SlideShare une entreprise Scribd logo
1  sur  53
Towards a functional analysis of the major factors
involved in the reproductive barrier between
Asian and African cultivated species of rice
Andrés GUTIÉRREZ
January 22, 2016
 Model plant for genetics and genomics studies
- Diploid species: 2n = 24, AA
- Genome size small: 390 Mb
- Short growth duration
- Efficient genetic transformation
- Extensive genomic resources:
High-quality reference sequence, dense molecular maps,
mutant libraries
Introduction
Rice (Oryza sativa): One of the most important crops in the world
2
 Oryza sativa complex (AA-genome type)
Source: FAO, 2004
 Many traits of agronomical interest (After Ali et al., 2010)
Introduction
Using AA genome species of rice to discover genes of importance
3
 Cultivated species: O. sativa and O. glaberrima
4
Introduction
Oryza glaberrima: A source for the improvement of Oryza sativa
• Diploid species: 2n = 24, AA
• Genome sequenced
• Resistance or tolerance to abiotic
and biotic stresses
• Traits have been combined with high
yield O. sativa acc.
 Strong reproductive barrier hamper his full utilization
Source: archive.gramene.org
Pre-mating isolation
Prevent the copulation and
fusion of gametes of interspecific
crosses
Post-mating isolation
After mating has occurred
=> prevent fertilization or
formation of zygotes hybrids
Introduction
• Habitat Isolation
• Temporal Isolation
• Behavioral Isolation
• Mechanical Isolation
• Gametic Mortality
Introduction
There are two basic categories of reproductive barriers
5
Pre-zygotic Isolation
Mechanisms
Pollen–pistil interactions
Post-zygotic Isolation
Mechanism
• Gametic incompatibility
• Zygote dies after fertilization
• Hybrid inviability
• Hybrid breakdown
• Hybrid Sterility
Arrest of the development of
young zygotes
Introduction
Post-mating isolation
6
Hybrid Sterility
Inability to form functional gametes in a hybrid due to
disturbances in sex-cell development or in meiosis, caused by
incompatible genetic constitution
Introduction
What is the importance of studying hybrid sterility?
 For understanding biology of reproduction
When, where and how action of genes involved in reproduction take
place
 For studying evolution
Hybrid sterility is one of the mechanisms of reproductive barrier
between species
 For breeding
Sterility decreases yield
Hybrid sterility genes prevent the introgression of useful genes
• This phenomenon is one of the strongest post-zygotic reproductive barriers in
Oryza species
• Use of O. glaberrima in breeding is limited
• Hybrid sterility prevent the introgression of useful genes
Introduction
Hybrid sterility between O. sativa x O. glaberrima
O. sativa
(Asian rice, AA genome)
O. glaberrima
(African rice, AA genome)
F1 hybrid
Totally male sterile
Partially female sterile
8
Introduction
Hybrid sterility between O. sativa x O. glaberrima
 Several loci causing hybrid sterility O. sativa x O. glaberrima => S1 locus exert the strong effect
 Epistatic interactions between these loci and S1
Garavito et al., 2010
9
• Genetics:
- S1 locus is the main factor of hybrid sterility between
O. sativa X O. glaberrima (Sano, 1990)
- S1 is a complex formed by three linked loci S1A, S1 and S1B
• Cytology:
- Abnormalities in gametophytes
Pollen semi-sterility
Normal embryo sac Abnormal embryo sac
Koide et al., 2008
Introduction
Hybrid sterility between O. sativa x O. glaberrima
- The effect of S1 is Universal (Tao, 2010)
10
Garavito et al., 2010
Guyot et al., 2011
• Female factor in a 27.8 kbp region nested in the male factor region
• Both male and female gamete elimination are probably controled
by the same factor(s)
Garavito et al.,2010
Introduction
Fine mapping of the S1 locus
Garavito et al.,2010
11
• Model of gamete elimination
Guyot et al., 2011
Garavito et al.,2010
200 400 600 800
200400600800
Nipponbare(849kpb)
CG14 (813 kpb) S1S1A S1B
O. sativa (Nipponbare)
O. glaberrima (CG14)
ENOD-93 ENOD-93 Ribos_biog F-box ENOD-93
ENOD-93 ENOD-93 Ribos_biog F-box ENOD-93
S1
F-box F-box_dup
F-box
S1A
Introduction
Structural genomics
12
S1B remains to be
elucidated
Introduction
The F-box is a protein motif of approximately 50 amino acids that
functions as a site of protein-protein interaction
Lechner et al. 2006 Current Opinion in Plant Biology. 9:631-638
14
Introduction
F-box proteins are involved in self-incompatibility
and floral organ determination
Introduction
F-box as candidate for S1 & S1A
F-box proteins in rice
F-box at S1 locus
RiceXpro DB
Jain et al., 2007
Classification of 687 F-box proteins based on their domain architecture
15
4. To investigate if the F-box plays a role in the development of male
gametophytes
Objective
To study the nature of the S1 locus
1. To characterize the sterile phenotype and to precise the cellular stage
where gamete development defect occurs
3. To evaluate the temporal and spatial expression of the F-box candidate
genes
2. To identify patterns of sequence divergence of the F-box candidate
orthologous genes
5. To verify the hypothesis that F-box is actually S1
- O. sativa: Caiapo
- O. glaberrima: MG12
- Introgression line: L229 BC3DH from Caiapo x MG12 (S1
g Introgressed)
CSSLs introgression Lines
S1 region _O. glaberrima
Chr. 6
S1Ag S1
g S1Bg
L229 BC3DH
O. sativa L229 O. glaberrima
17
Materials and Methods
Isolation of the S1 region
Gutierrez et al., 2010
229 line (BC3DH) X O. sativa (Caiapo)
Chr. 6 S1Ag S1
g S1Bg S1As S1
s S1Bs
• Panicle, pollen and embryo sac evaluation
• Cytology observations
• Gene expression analysis
S1Ag
S1As S1Bs
BC4F1
S1
g S1Bg
S1
s
18
Materials and Methods
Genetic stocks
Gutierrez et al., 2015 (submitted)
19
Materials and Methods
Evaluation at different stages of O. sativa, O.glaberrima & L229_F1
Female
gametophyte
development
Male
gametophyte
development
4. To investigate if the F-box plays a role in the development of male
gametophytes
Objective
3. To evaluate the temporal and spatial expression of the F-box candidate
genes
2. To identify patterns of sequence divergence of the F-box candidate
orthologous genes
5. To verify the hypothesis that F-box is actually S1
 Panicle, pollen grains and embryo sac fertility evaluation
 Histology analysis
1. To characterize the sterile phenotype and to precise the cellular stage
where gamete development defect occurs
1. To characterize the sterile phenotype and to precise the cellular stage
where gamete development defect occurs
0%
10%
20%
30%
40%
50%
60%
70%
80%
90%
100%
110%
Caiapo MG12 L229-F1
Panicle Fertility
Pollen grain fertility
DAPI
Pollen germination
Embryo sac fertility
O. sativa L229-F1 O. glaberrima
Results
Panicle Fertility
Reduced fertility in the L229-F1
21
L229-F1O. sativa
0%
10%
20%
30%
40%
50%
60%
70%
80%
90%
100%
110%
Caiapo MG12 L229-F1
Panicle Fertility
Pollen grain fertility
DAPI
Pollen germination
Embryo sac fertility
Results
Pollen grain fertility
22
Msp
MP
AP
Msp
MP
Results
Male gametophyte development in O. sativa and L229_F1
Pollen grain abortion in the hybrid seems to occur at the early microspore stage
Meiosis
O. sativa
L229_F1
Early Microspore Mitosis Maturation
23
0%
10%
20%
30%
40%
50%
60%
70%
80%
90%
100%
110%
Caiapo MG12 L229-F1
Panicle Fertility
Pollen grain fertility
DAPI
Pollen germination
Embryo sac fertility
O. sativa L229-F1
Results
Embryo sac fertility
43.75% embryo sacs were aborted
in the L229-F1
24
dm
fm
dm
Results
Female gametophyte development in O. sativa and L229_F1
Embryo sac abortion in the hybrid seems to occur after completion of meiosis
MMC Meiosis Maturation
O. sativa
L229_F1
25
Conclusion
 L229_F1 showed around 50% of pollen and embryo sac
sterility and 78% of panicle sterility
 Pollen grain abortion in L229_F1 occur at the early
microspore stage
 Embryo sac abortion in L229_F1 occur after completion of
meiosis
Precise determination of abnormalities
4. To investigate if the F-box plays a role in the development of male
gametophytes
Objective
3. To evaluate the temporal and spatial expression of the F-box candidate
genes
2. To identify patterns of sequence divergence of the F-box candidate
orthologous genes
5. To verify the hypothesis that F-box is actually S1
2. To identify patterns of sequence divergence of the F-box candidate
orthologous genes
1. To characterize the sterile phenotype and to precise the cellular stage
where gamete development defect occurs
Sequence comparison and gene structure
of orthologous F-box alleles
Results
F-box at S1 locus is an FBL (F-box and LRR)
OsFBL-185
Pairwise % Identity
Genomic: 84.0%
CDS: 98.1%
Results
F-box at S1 locus (OsFBL-185)
OsFBL-185 lacks an Arginine at the 15th position of the first exon
F-box domain
LRR domain
29
O. sativa
O. glaberrima
O. sativa
O. glaberrima
O. sativa
O. glaberrima
O. sativa
O. glaberrima
O. sativa
O. glaberrima
O. sativa
O. glaberrima
O. sativa
O. glaberrima
O. sativa
O. glaberrima
O. sativa
O. glaberrima
Results
F-box at S1A locus is an FBL (F-box and LRR)
OsFBL-184
30
Pairwise % Identity
Genomic: 94.4%
CDS: 96.9%
Results
F-box at S1A locus (OsFBL-184)
Two amino acid conversion in the F-box domain and two in the LRR domain
F-box domain
LRR domain
31
O. sativa
O. glaberrima
O. sativa
O. glaberrima
O. sativa
O. glaberrima
O. sativa
O. glaberrima
O. sativa
O. glaberrima
O. sativa
O. glaberrima
O. sativa
O. glaberrima
O. sativa
O. glaberrima
O. sativa
O. glaberrima
Conclusion
 There are important structural changes between the
orthologous genes (S1 and S1A)
=> OsFBL-185 lacks an Arginine at the 15th position of the
first exon
=> Two amino acid conversion in the F-box domain and two in
the LRR domain in OsFBL-184
4. To investigate if the F-box plays a role in the development of male
gametophytes
Objective
3. To evaluate the temporal and spatial expression of the F-box candidate
genes
2. To identify patterns of sequence divergence of the F-box candidate
orthologous genes
5. To verify the hypothesis that F-box is actually S1
3. To evaluate the temporal and spatial expression of the F-box
candidate genes
1. To characterize the sterile phenotype and to precise the cellular stage
where gamete development defect occurs
 qPCR analysis
 in situ hybridization
Highest expression in the hybrid at critical meiosis/mitosis stages
Results
Expression analysis of F-box at S1 locus
O. sativa
O. glaberrima
S1A S1
<
<
<
0
0.2
0.4
0.6
0.8
1
1.2
< 2 cm 2 - 5 cm 6 - 9 cm 10 - 13 cm 14 - 17 cm > 18 cm
Relativeexpression
0
0.2
0.4
0.6
0.8
1
1.2
1.4
< 2 cm 2 - 5 cm 6 - 9 cm 10 - 13 cm 14 - 17 cm > 18 cm
Relativeexpression
MaturationMMC Meiosis Mitosis I - II Mitosis III
PMC Meiosis Microspore
formation
Mitosis I Mitosis II - Maturation
Floral organs
differentiation
0
0.2
0.4
0.6
0.8
1
1.2
1.4
Spikelet Palea-Lemma-Glumes Pistil Stamen
Caiapo
BC4F1
MaturationMMC Meiosis Mitosis I - II Mitosis III
PMC Meiosis Microspore
formation
Mitosis I Mitosis II - Maturation
Floral organs
differentiation
0
0.2
0.4
0.6
0.8
1
1.2
1.4
Spikelet Palea-Lemma-Glumes Pistil Stamen
MG12
BC4F1
34
Specifically expressed in the embryo sac and pollen grains in development
Results
Spatial expression of F-box at S1 locus in female and male
gametophytes
Caiapo L229_BC4F1 MG12
Anti-sense probe
Sense probe
Anti-sense probe Sense probe
Caiapo L229_BC4F1
LNA probe_O. sativa
Caiapo
35
MG12
0
0.5
1
1.5
2
2.5
< 2 cm 2 - 5 cm 6 - 9 cm 10 - 13 cm 14 - 17 cm > 18 cm
Relativeexpression
Highest expression in the hybrid at floral organ differentiation and meiosis/mitosis stages
Results
Expression analysis of F-box at S1A locus
S1A S1
O. sativa
O. glaberrima
0
0.2
0.4
0.6
0.8
1
1.2
1.4
1.6
< 2 cm 2 - 5 cm 6 - 9 cm 10 - 13 cm 14 - 17 cm > 18 cm
Relativeexpression
MaturationMMC Meiosis Mitosis I - II Mitosis III
PMC Meiosis Microspore
formation
Mitosis I Mitosis II - Maturation
Floral organs
differentiation
MaturationMMC Meiosis Mitosis I - II Mitosis III
PMC Meiosis Microspore
formation
Mitosis I Mitosis II - Maturation
Floral organs
differentiation
0
0.5
1
1.5
2
2.5
Spikelet Palea-Lemma-Glumes Pistil Stamen
Caiapo
BC4F1
0
0.2
0.4
0.6
0.8
1
1.2
1.4
1.6
Spikelet Palea-Lemma-Glumes Pistil Stamen
MG12
BC4F1
36
Conclusion
 The F-box genes of S1 and S1A in the hybrid showed highest
expression at Critical meiosis/mitosis stages
The F-box OsFBL-185 is specifically expressed in the immature
embryo sac and pollen grains
4. To investigate if the F-box plays a role in the development of male
gametophytes
Objective
3. To evaluate the temporal and spatial expression of the F-box candidate
genes
2. To identify patterns of sequence divergence of the F-box candidate
orthologous genes
5. To verify the hypothesis that F-box is actually S1
4. To investigate if the F-box plays a role in the development of male
gametophytes
1. To characterize the sterile phenotype and to precise the cellular stage
where gamete development defect occurs
Knock-out of the F-box OsFBL-185 using
the CRISPR/Cas9 system
Expression vector pOsUbi-Cas9
Cas9/sgRNA complex
Materials and Methods
Functional validation of OsFBL-185 through CRISPR-Cas9 system
Prokaryotic immune system that confers resistance to foreign genetic elements such as plasmids and phages
sgRNA_S1-1
sgRNA_S1-2 sgRNA_S1-3
Selected sgRNA target sites of OsFBL-185 39
Results
Functional validation of OsFBL-185 through CRISPR-Cas9 system
Transformed plants in the T0 generation
 A total of 79 plants were obtained
 Vegetative phenotype similar to WT
 Pollen fertility of 72 lines was observed
WT Transgenic
40
 Pollen fertility of 72 lines was observed
Results
Functional validation of OsFBL-185 through CRISPR-Cas9 system
sgRNA_S1-1 sgRNA_S1-2 sgRNA_S1-3
T7 assay
41
 From 72 lines observed:
56 showed a deletion in the OsFBL-185 gene.
From these 56 lines:
22 (39.3%) => partial or complete pollen sterility
34 (60.7%) => pollen fertile
Results
Functional validation of OsFBL-185 through CRISPR-Cas9 system
Deletion-Phenotype 1 Deletion-Phenotype 2
Fertile
Semi-sterile Sterile
OsFBL-185 seems to play a significant role in the development of male gametes42
Pollen grain evaluation
4. To investigate if the F-box plays a role in the development of male
gametophytes
Objective
3. To evaluate the temporal and spatial expression of the F-box candidate
genes
2. To identify patterns of sequence divergence of the F-box candidate
orthologous genes
5. To verify the hypothesis that F-box is actually S1
5. To verify the hypothesis that F-box is actually S1
1. To characterize the sterile phenotype and to precise the cellular stage
where gamete development defect occurs
Functional complementation strategy
Results
Validation of OsFBL-185 through functional complementation
Genetic transformation of Caiapo (O. sativa) with the F-box “S1
g” from O. glaberrima
Over-Express-O. glaberrima-CDS
Over-Express-O. sativa-CDS
T0 generation
Results
Validation of OsFBL-185 through functional complementation
45
O. sativa Over_sat Over_glab
Pollen grain evaluation
Results
Validation of OsFBL-185 through functional complementation
0.00
20.00
40.00
60.00
80.00
100.00
O. sativa Over_sat Over_glab
46
Failure in male gamete development in the O. sativa x O. glaberrima hybrid is
due to allelic interaction between S1
g and S1
s
Conclusion
 OsFBL-185 seems to play a significant role in the
development and viability of male gametes in rice
=> knock-out by CRISPR/Cas9 system
- Mutants with deletions showed a sterile phenotype
 OsFBL-185 F-box is actually S1, the main sterility factor in the
interspecific O. sativa x O. glaberrima hybrid
=> Functional complementation
- Over expression of S1
g in O. sativa show a sterile phenotype
like the natural hybrid
General Conclusion
OsFBL-185 is actually S1, the main sterility factor in the interspecific
O. sativa x O. glaberrima hybrid
48
OsFBL-1850
0.2
0.4
0.6
0.8
1
1.2
1.4
0
0.2
0.4
0.6
0.8
1
1.2
Pollen grain sterility
Pollen abortion in the hybrid is possibly due to the alteration of a
target protein anchored by OsFBL-185
OsFBL-185 may assemble into an active SCF complex which interact with an
unknown target protein => Protein Degradation
49
Perspectives
 Functional analysis: Validation of CRISPR and Complementation results
=> Characterization of T1 plants by co-segregation analysis
 What it is the function of the F-box OsFBL-185?
 Does this protein form an SCF Complex?
 What is the Target Protein?
=> Identification of protein subunits of the SCF complex
=> Bacterial 2 hybrid assays
=> Protein expression and allelic imbalance
 What are OsFBL-185 interactions?
=> Bimolecular fluorescence complementation (BiFC) assay
Elucidation of pathways at the molecular level
in O. sativa and the hybrid 50
Perspectives
 Develop compatible interspecific bridges
Using CRISPR/Cas9 by suppressing the expression of the S1
g allele and/or for large
chromosomal deletions => S1 region
 Identification of factors involved in female gamete development (S1A - S1B loci)
=> RNA-seq and transcriptome profiles of recombinants lines around S1
51
IRD
Mathias Lorieux
Hélène Adam
Laurence Albar
François Sabot
Christine Tranchant
Pierre Larmande
Hélène Pidon
Cecile Monat
Harold Chrestin
Sophie Cheron
Elise Grenon
Anais Roudiere
Myriam Collin
Stéphane Jouannic
Alain Ghesquière
CIRAD
Emmanuel Guiderdoni
Donaldo Meynard
Anne Cecile Meunier
Jérôme Puig
Mumu
Aurore Vernet
Martine Bes
Julie Petit
Acknowledgments
52
CIAT
Silvio James Carabalí
Natalia Franco
Lady Arbelaez
Alex Aguirre
Marco Brito
Victor Lozano
Paul Chavarriaga
Sandra Vidal
Didier Marin
Thank you for your attention

Contenu connexe

Tendances

Ppt on exploitation of male sterility in monocots and dicots
Ppt on exploitation of male sterility in monocots and dicotsPpt on exploitation of male sterility in monocots and dicots
Ppt on exploitation of male sterility in monocots and dicotsICRISAT
 
Seminar on male sterility and fertility restoration 50026 5 01-2018
Seminar on male sterility and fertility restoration 50026 5 01-2018Seminar on male sterility and fertility restoration 50026 5 01-2018
Seminar on male sterility and fertility restoration 50026 5 01-2018Sonu Shekhawat
 
Using Genomics to Unravel the Mysteries of Sclerotinia homeoeocarpa
Using Genomics to Unravel the Mysteries of Sclerotinia homeoeocarpaUsing Genomics to Unravel the Mysteries of Sclerotinia homeoeocarpa
Using Genomics to Unravel the Mysteries of Sclerotinia homeoeocarpaNC State Turf Pathology
 
Genetic engineering for male sterility
Genetic  engineering for male sterilityGenetic  engineering for male sterility
Genetic engineering for male sterilityNidhi Singh
 
Male sterility
Male sterilityMale sterility
Male sterilityDev Hingra
 
Genetic Engineering for Male Sterility in Plants
Genetic Engineering for Male Sterility in PlantsGenetic Engineering for Male Sterility in Plants
Genetic Engineering for Male Sterility in PlantsNavaneetha Krishnan J
 
Molecular basis of self-incompatibility
Molecular basis of self-incompatibilityMolecular basis of self-incompatibility
Molecular basis of self-incompatibility Anushi Suwaneththiya
 
Marker assisted selection of male sterility in rice --vipin
Marker assisted selection of male sterility in rice --vipin Marker assisted selection of male sterility in rice --vipin
Marker assisted selection of male sterility in rice --vipin Vipin Kannan
 
Cytoplasmic Male Sterility In Minor Crop - Sorghum
Cytoplasmic Male Sterility In Minor Crop - SorghumCytoplasmic Male Sterility In Minor Crop - Sorghum
Cytoplasmic Male Sterility In Minor Crop - Sorghumishtiaq shariq
 
transgenic male sterlity
transgenic male sterlitytransgenic male sterlity
transgenic male sterlityArushi Arora
 
Male sterility, types and utilization in hybrid seed production
Male sterility, types and utilization in hybrid seed productionMale sterility, types and utilization in hybrid seed production
Male sterility, types and utilization in hybrid seed productionHirdayesh Anuragi
 
Molecular control of male fertility for crop hybrid breeding
Molecular control of male fertility for crop hybrid breedingMolecular control of male fertility for crop hybrid breeding
Molecular control of male fertility for crop hybrid breedingSuresh Antre
 
Male sterility and self incompatibility in crop plants
Male sterility and self incompatibility in crop plantsMale sterility and self incompatibility in crop plants
Male sterility and self incompatibility in crop plantsRakshith Pinku
 
Male sterility applications in Hybrid seed production.
Male sterility applications in Hybrid seed production.Male sterility applications in Hybrid seed production.
Male sterility applications in Hybrid seed production.Roshan Parihar
 
transgenic male sterlity
transgenic male sterlitytransgenic male sterlity
transgenic male sterlityArushi Arora
 

Tendances (20)

Ppt on exploitation of male sterility in monocots and dicots
Ppt on exploitation of male sterility in monocots and dicotsPpt on exploitation of male sterility in monocots and dicots
Ppt on exploitation of male sterility in monocots and dicots
 
Seminar on male sterility and fertility restoration 50026 5 01-2018
Seminar on male sterility and fertility restoration 50026 5 01-2018Seminar on male sterility and fertility restoration 50026 5 01-2018
Seminar on male sterility and fertility restoration 50026 5 01-2018
 
Using Genomics to Unravel the Mysteries of Sclerotinia homeoeocarpa
Using Genomics to Unravel the Mysteries of Sclerotinia homeoeocarpaUsing Genomics to Unravel the Mysteries of Sclerotinia homeoeocarpa
Using Genomics to Unravel the Mysteries of Sclerotinia homeoeocarpa
 
Genetic engineering for male sterility
Genetic  engineering for male sterilityGenetic  engineering for male sterility
Genetic engineering for male sterility
 
Transgenic male sterility
Transgenic male sterilityTransgenic male sterility
Transgenic male sterility
 
Male sterility
Male sterilityMale sterility
Male sterility
 
Genetic Engineering for Male Sterility in Plants
Genetic Engineering for Male Sterility in PlantsGenetic Engineering for Male Sterility in Plants
Genetic Engineering for Male Sterility in Plants
 
Engineered male sterility
Engineered male sterilityEngineered male sterility
Engineered male sterility
 
Molecular basis of self-incompatibility
Molecular basis of self-incompatibilityMolecular basis of self-incompatibility
Molecular basis of self-incompatibility
 
Marker assisted selection of male sterility in rice --vipin
Marker assisted selection of male sterility in rice --vipin Marker assisted selection of male sterility in rice --vipin
Marker assisted selection of male sterility in rice --vipin
 
Cytoplasmic Male Sterility In Minor Crop - Sorghum
Cytoplasmic Male Sterility In Minor Crop - SorghumCytoplasmic Male Sterility In Minor Crop - Sorghum
Cytoplasmic Male Sterility In Minor Crop - Sorghum
 
Barnase barstar system
Barnase barstar systemBarnase barstar system
Barnase barstar system
 
transgenic male sterlity
transgenic male sterlitytransgenic male sterlity
transgenic male sterlity
 
Male sterility, types and utilization in hybrid seed production
Male sterility, types and utilization in hybrid seed productionMale sterility, types and utilization in hybrid seed production
Male sterility, types and utilization in hybrid seed production
 
Molecular control of male fertility for crop hybrid breeding
Molecular control of male fertility for crop hybrid breedingMolecular control of male fertility for crop hybrid breeding
Molecular control of male fertility for crop hybrid breeding
 
Application of Molecular markers for identification of restorers
Application of Molecular markers for identification of restorersApplication of Molecular markers for identification of restorers
Application of Molecular markers for identification of restorers
 
Male sterility and self incompatibility in crop plants
Male sterility and self incompatibility in crop plantsMale sterility and self incompatibility in crop plants
Male sterility and self incompatibility in crop plants
 
Male sterlity and Self incompatibility.
Male sterlity and Self incompatibility.Male sterlity and Self incompatibility.
Male sterlity and Self incompatibility.
 
Male sterility applications in Hybrid seed production.
Male sterility applications in Hybrid seed production.Male sterility applications in Hybrid seed production.
Male sterility applications in Hybrid seed production.
 
transgenic male sterlity
transgenic male sterlitytransgenic male sterlity
transgenic male sterlity
 

En vedette (7)

Outbreeding
OutbreedingOutbreeding
Outbreeding
 
Sexual reproduction in flowering plants
Sexual reproduction in flowering plantsSexual reproduction in flowering plants
Sexual reproduction in flowering plants
 
Sexual reproduction in plants ppt
Sexual reproduction in plants pptSexual reproduction in plants ppt
Sexual reproduction in plants ppt
 
Plant reproduction
Plant reproductionPlant reproduction
Plant reproduction
 
Sexual reproduction in_plants powerpoint
Sexual reproduction in_plants powerpointSexual reproduction in_plants powerpoint
Sexual reproduction in_plants powerpoint
 
Breeding systems
Breeding systemsBreeding systems
Breeding systems
 
Plant Breeding Methods
Plant Breeding MethodsPlant Breeding Methods
Plant Breeding Methods
 

Similaire à Towards a functional analysis of the major factors involved in the reproductive barrier between Asian and African cultivated species of rice

Self incompatibility in plants: a pollination control mechanism in plants
Self incompatibility in plants: a pollination control mechanism in plantsSelf incompatibility in plants: a pollination control mechanism in plants
Self incompatibility in plants: a pollination control mechanism in plantsVijayakumar Narayanpur
 
Genetic, biochemical and molecular mechanism SI and factors causing breakdown...
Genetic, biochemical and molecular mechanism SI and factors causing breakdown...Genetic, biochemical and molecular mechanism SI and factors causing breakdown...
Genetic, biochemical and molecular mechanism SI and factors causing breakdown...RonikaThakur
 
Endosymbiont hunting in the metagenome of Asian citrus psyllid (Diaphorina ci...
Endosymbiont hunting in the metagenome of Asian citrus psyllid (Diaphorina ci...Endosymbiont hunting in the metagenome of Asian citrus psyllid (Diaphorina ci...
Endosymbiont hunting in the metagenome of Asian citrus psyllid (Diaphorina ci...Surya Saha
 
Molecular basis of Self Incompatibility In Crop Plants
Molecular basis of Self Incompatibility In Crop PlantsMolecular basis of Self Incompatibility In Crop Plants
Molecular basis of Self Incompatibility In Crop PlantsGowthami R
 
Projects_Completed_2012
Projects_Completed_2012Projects_Completed_2012
Projects_Completed_2012Sameh Ezzat
 
Allele mining in orphan underutilized crops
Allele mining in orphan underutilized cropsAllele mining in orphan underutilized crops
Allele mining in orphan underutilized cropsCCS HAU, HISAR
 
SabineHaenniger-Thesis-2015
SabineHaenniger-Thesis-2015SabineHaenniger-Thesis-2015
SabineHaenniger-Thesis-2015Sabine Hänniger
 
ABC Model of Flower development
ABC Model of Flower developmentABC Model of Flower development
ABC Model of Flower developmentvidan biology
 
ENVIRONMENTAL EFFECT ON CELLULAR DIFFERENTIATION REGULATION - FINAL
ENVIRONMENTAL EFFECT ON CELLULAR DIFFERENTIATION REGULATION - FINALENVIRONMENTAL EFFECT ON CELLULAR DIFFERENTIATION REGULATION - FINAL
ENVIRONMENTAL EFFECT ON CELLULAR DIFFERENTIATION REGULATION - FINALMichael Ishak
 
The Genetic Background of Chemical Communication and Chemosensory Gene Evolut...
The Genetic Background of Chemical Communication and Chemosensory Gene Evolut...The Genetic Background of Chemical Communication and Chemosensory Gene Evolut...
The Genetic Background of Chemical Communication and Chemosensory Gene Evolut...Katri Ketola
 
Learning from the pathogen towards tailored-sustainable resistance : the case...
Learning from the pathogen towards tailored-sustainable resistance : the case...Learning from the pathogen towards tailored-sustainable resistance : the case...
Learning from the pathogen towards tailored-sustainable resistance : the case...CIAT
 
“Transcription factor as signaling regulatory tools for improving growth proc...
“Transcription factor as signaling regulatory tools for improving growth proc...“Transcription factor as signaling regulatory tools for improving growth proc...
“Transcription factor as signaling regulatory tools for improving growth proc...AKSHAYMAGAR17
 
Molecular markers in legumes
Molecular markers in legumesMolecular markers in legumes
Molecular markers in legumesAbdul GHAFOOR
 
A Gunadi - Rps3a and 8 not allelic 36x45in
A Gunadi - Rps3a and 8 not allelic 36x45inA Gunadi - Rps3a and 8 not allelic 36x45in
A Gunadi - Rps3a and 8 not allelic 36x45inAndika Gunadi
 
Presentation on pedigree method and back-cross breeding method comparison
Presentation on pedigree method and back-cross breeding method comparisonPresentation on pedigree method and back-cross breeding method comparison
Presentation on pedigree method and back-cross breeding method comparisonDr. Kaushik Kumar Panigrahi
 
Chen tai xiang and me 2018
Chen tai xiang and me 2018Chen tai xiang and me 2018
Chen tai xiang and me 2018zaheer ahmad
 

Similaire à Towards a functional analysis of the major factors involved in the reproductive barrier between Asian and African cultivated species of rice (20)

Self incompatibility in plants: a pollination control mechanism in plants
Self incompatibility in plants: a pollination control mechanism in plantsSelf incompatibility in plants: a pollination control mechanism in plants
Self incompatibility in plants: a pollination control mechanism in plants
 
Genetic, biochemical and molecular mechanism SI and factors causing breakdown...
Genetic, biochemical and molecular mechanism SI and factors causing breakdown...Genetic, biochemical and molecular mechanism SI and factors causing breakdown...
Genetic, biochemical and molecular mechanism SI and factors causing breakdown...
 
Endosymbiont hunting in the metagenome of Asian citrus psyllid (Diaphorina ci...
Endosymbiont hunting in the metagenome of Asian citrus psyllid (Diaphorina ci...Endosymbiont hunting in the metagenome of Asian citrus psyllid (Diaphorina ci...
Endosymbiont hunting in the metagenome of Asian citrus psyllid (Diaphorina ci...
 
Molecular basis of Self Incompatibility In Crop Plants
Molecular basis of Self Incompatibility In Crop PlantsMolecular basis of Self Incompatibility In Crop Plants
Molecular basis of Self Incompatibility In Crop Plants
 
Projects_Completed_2012
Projects_Completed_2012Projects_Completed_2012
Projects_Completed_2012
 
Allele mining in orphan underutilized crops
Allele mining in orphan underutilized cropsAllele mining in orphan underutilized crops
Allele mining in orphan underutilized crops
 
SabineHaenniger-Thesis-2015
SabineHaenniger-Thesis-2015SabineHaenniger-Thesis-2015
SabineHaenniger-Thesis-2015
 
ABC Model of Flower development
ABC Model of Flower developmentABC Model of Flower development
ABC Model of Flower development
 
ENVIRONMENTAL EFFECT ON CELLULAR DIFFERENTIATION REGULATION - FINAL
ENVIRONMENTAL EFFECT ON CELLULAR DIFFERENTIATION REGULATION - FINALENVIRONMENTAL EFFECT ON CELLULAR DIFFERENTIATION REGULATION - FINAL
ENVIRONMENTAL EFFECT ON CELLULAR DIFFERENTIATION REGULATION - FINAL
 
2015 hm clause
2015 hm clause2015 hm clause
2015 hm clause
 
Rice
RiceRice
Rice
 
The Genetic Background of Chemical Communication and Chemosensory Gene Evolut...
The Genetic Background of Chemical Communication and Chemosensory Gene Evolut...The Genetic Background of Chemical Communication and Chemosensory Gene Evolut...
The Genetic Background of Chemical Communication and Chemosensory Gene Evolut...
 
Learning from the pathogen towards tailored-sustainable resistance : the case...
Learning from the pathogen towards tailored-sustainable resistance : the case...Learning from the pathogen towards tailored-sustainable resistance : the case...
Learning from the pathogen towards tailored-sustainable resistance : the case...
 
DansPoster presentation-PDF
DansPoster presentation-PDFDansPoster presentation-PDF
DansPoster presentation-PDF
 
“Transcription factor as signaling regulatory tools for improving growth proc...
“Transcription factor as signaling regulatory tools for improving growth proc...“Transcription factor as signaling regulatory tools for improving growth proc...
“Transcription factor as signaling regulatory tools for improving growth proc...
 
Molecular markers in legumes
Molecular markers in legumesMolecular markers in legumes
Molecular markers in legumes
 
A Gunadi - Rps3a and 8 not allelic 36x45in
A Gunadi - Rps3a and 8 not allelic 36x45inA Gunadi - Rps3a and 8 not allelic 36x45in
A Gunadi - Rps3a and 8 not allelic 36x45in
 
Presentation on pedigree method and back-cross breeding method comparison
Presentation on pedigree method and back-cross breeding method comparisonPresentation on pedigree method and back-cross breeding method comparison
Presentation on pedigree method and back-cross breeding method comparison
 
Allele mining
Allele miningAllele mining
Allele mining
 
Chen tai xiang and me 2018
Chen tai xiang and me 2018Chen tai xiang and me 2018
Chen tai xiang and me 2018
 

Plus de CIAT

Agricultura Sostenible y Cambio Climático
Agricultura Sostenible y Cambio ClimáticoAgricultura Sostenible y Cambio Climático
Agricultura Sostenible y Cambio ClimáticoCIAT
 
Resumen mesas trabajo
Resumen mesas trabajoResumen mesas trabajo
Resumen mesas trabajoCIAT
 
Impacto de las intervenciones agricolas y de salud para reducir la deficienci...
Impacto de las intervenciones agricolas y de salud para reducir la deficienci...Impacto de las intervenciones agricolas y de salud para reducir la deficienci...
Impacto de las intervenciones agricolas y de salud para reducir la deficienci...CIAT
 
Agricultura sensible a la nutrición en el Altiplano. Explorando las perspecti...
Agricultura sensible a la nutrición en el Altiplano. Explorando las perspecti...Agricultura sensible a la nutrición en el Altiplano. Explorando las perspecti...
Agricultura sensible a la nutrición en el Altiplano. Explorando las perspecti...CIAT
 
El rol de los padres en la nutrición del hogar
El rol de los padres en la nutrición del hogarEl rol de los padres en la nutrición del hogar
El rol de los padres en la nutrición del hogarCIAT
 
Scaling up soil carbon enhancement contributing to mitigate climate change
Scaling up soil carbon enhancement contributing to mitigate climate changeScaling up soil carbon enhancement contributing to mitigate climate change
Scaling up soil carbon enhancement contributing to mitigate climate changeCIAT
 
Impacto del Cambio Climático en la Agricultura de República Dominicana
Impacto del Cambio Climático en la Agricultura de República DominicanaImpacto del Cambio Climático en la Agricultura de República Dominicana
Impacto del Cambio Climático en la Agricultura de República DominicanaCIAT
 
BioTerra: Nuevo sistema de monitoreo de la biodiversidad en desarrollo por el...
BioTerra: Nuevo sistema de monitoreo de la biodiversidad en desarrollo por el...BioTerra: Nuevo sistema de monitoreo de la biodiversidad en desarrollo por el...
BioTerra: Nuevo sistema de monitoreo de la biodiversidad en desarrollo por el...CIAT
 
Investigaciones sobre Cadmio en el Cacao Colombiano
Investigaciones sobre Cadmio en el Cacao ColombianoInvestigaciones sobre Cadmio en el Cacao Colombiano
Investigaciones sobre Cadmio en el Cacao ColombianoCIAT
 
Cacao for Peace Activities for Tackling the Cadmium in Cacao Issue in Colo...
Cacao for Peace Activities for Tackling the Cadmium in Cacao Issue    in Colo...Cacao for Peace Activities for Tackling the Cadmium in Cacao Issue    in Colo...
Cacao for Peace Activities for Tackling the Cadmium in Cacao Issue in Colo...CIAT
 
Tackling cadmium in cacao and derived products – from farm to fork
Tackling cadmium in cacao and derived products – from farm to forkTackling cadmium in cacao and derived products – from farm to fork
Tackling cadmium in cacao and derived products – from farm to forkCIAT
 
Cadmium bioaccumulation and gastric bioaccessibility in cacao: A field study ...
Cadmium bioaccumulation and gastric bioaccessibility in cacao: A field study ...Cadmium bioaccumulation and gastric bioaccessibility in cacao: A field study ...
Cadmium bioaccumulation and gastric bioaccessibility in cacao: A field study ...CIAT
 
Geographical Information System Mapping for Optimized Cacao Production in Col...
Geographical Information System Mapping for Optimized Cacao Production in Col...Geographical Information System Mapping for Optimized Cacao Production in Col...
Geographical Information System Mapping for Optimized Cacao Production in Col...CIAT
 
Contenido de cadmio en granos de cacao
Contenido de cadmio en granos de cacaoContenido de cadmio en granos de cacao
Contenido de cadmio en granos de cacaoCIAT
 
Técnicas para disminuir la disponibilidad de cadmio en suelos de cacaoteras
Técnicas para disminuir la disponibilidad de cadmio en suelos de cacaoterasTécnicas para disminuir la disponibilidad de cadmio en suelos de cacaoteras
Técnicas para disminuir la disponibilidad de cadmio en suelos de cacaoterasCIAT
 
Cacao and Cadmium Research at Penn State
Cacao and Cadmium Research at Penn StateCacao and Cadmium Research at Penn State
Cacao and Cadmium Research at Penn StateCIAT
 
Aportes para el manejo de Cd en cacao
Aportes para el manejo de Cd en cacaoAportes para el manejo de Cd en cacao
Aportes para el manejo de Cd en cacaoCIAT
 
CENTRO DE INNOVACIÓN DEL CACAO PERÚ
CENTRO DE INNOVACIÓN DEL CACAO PERÚCENTRO DE INNOVACIÓN DEL CACAO PERÚ
CENTRO DE INNOVACIÓN DEL CACAO PERÚCIAT
 
Investigaciones sore Cadmio en el Cacao Colombiano
Investigaciones sore Cadmio en el Cacao ColombianoInvestigaciones sore Cadmio en el Cacao Colombiano
Investigaciones sore Cadmio en el Cacao ColombianoCIAT
 
Avances de investigación en cd en cacao
Avances de investigación en cd en cacaoAvances de investigación en cd en cacao
Avances de investigación en cd en cacaoCIAT
 

Plus de CIAT (20)

Agricultura Sostenible y Cambio Climático
Agricultura Sostenible y Cambio ClimáticoAgricultura Sostenible y Cambio Climático
Agricultura Sostenible y Cambio Climático
 
Resumen mesas trabajo
Resumen mesas trabajoResumen mesas trabajo
Resumen mesas trabajo
 
Impacto de las intervenciones agricolas y de salud para reducir la deficienci...
Impacto de las intervenciones agricolas y de salud para reducir la deficienci...Impacto de las intervenciones agricolas y de salud para reducir la deficienci...
Impacto de las intervenciones agricolas y de salud para reducir la deficienci...
 
Agricultura sensible a la nutrición en el Altiplano. Explorando las perspecti...
Agricultura sensible a la nutrición en el Altiplano. Explorando las perspecti...Agricultura sensible a la nutrición en el Altiplano. Explorando las perspecti...
Agricultura sensible a la nutrición en el Altiplano. Explorando las perspecti...
 
El rol de los padres en la nutrición del hogar
El rol de los padres en la nutrición del hogarEl rol de los padres en la nutrición del hogar
El rol de los padres en la nutrición del hogar
 
Scaling up soil carbon enhancement contributing to mitigate climate change
Scaling up soil carbon enhancement contributing to mitigate climate changeScaling up soil carbon enhancement contributing to mitigate climate change
Scaling up soil carbon enhancement contributing to mitigate climate change
 
Impacto del Cambio Climático en la Agricultura de República Dominicana
Impacto del Cambio Climático en la Agricultura de República DominicanaImpacto del Cambio Climático en la Agricultura de República Dominicana
Impacto del Cambio Climático en la Agricultura de República Dominicana
 
BioTerra: Nuevo sistema de monitoreo de la biodiversidad en desarrollo por el...
BioTerra: Nuevo sistema de monitoreo de la biodiversidad en desarrollo por el...BioTerra: Nuevo sistema de monitoreo de la biodiversidad en desarrollo por el...
BioTerra: Nuevo sistema de monitoreo de la biodiversidad en desarrollo por el...
 
Investigaciones sobre Cadmio en el Cacao Colombiano
Investigaciones sobre Cadmio en el Cacao ColombianoInvestigaciones sobre Cadmio en el Cacao Colombiano
Investigaciones sobre Cadmio en el Cacao Colombiano
 
Cacao for Peace Activities for Tackling the Cadmium in Cacao Issue in Colo...
Cacao for Peace Activities for Tackling the Cadmium in Cacao Issue    in Colo...Cacao for Peace Activities for Tackling the Cadmium in Cacao Issue    in Colo...
Cacao for Peace Activities for Tackling the Cadmium in Cacao Issue in Colo...
 
Tackling cadmium in cacao and derived products – from farm to fork
Tackling cadmium in cacao and derived products – from farm to forkTackling cadmium in cacao and derived products – from farm to fork
Tackling cadmium in cacao and derived products – from farm to fork
 
Cadmium bioaccumulation and gastric bioaccessibility in cacao: A field study ...
Cadmium bioaccumulation and gastric bioaccessibility in cacao: A field study ...Cadmium bioaccumulation and gastric bioaccessibility in cacao: A field study ...
Cadmium bioaccumulation and gastric bioaccessibility in cacao: A field study ...
 
Geographical Information System Mapping for Optimized Cacao Production in Col...
Geographical Information System Mapping for Optimized Cacao Production in Col...Geographical Information System Mapping for Optimized Cacao Production in Col...
Geographical Information System Mapping for Optimized Cacao Production in Col...
 
Contenido de cadmio en granos de cacao
Contenido de cadmio en granos de cacaoContenido de cadmio en granos de cacao
Contenido de cadmio en granos de cacao
 
Técnicas para disminuir la disponibilidad de cadmio en suelos de cacaoteras
Técnicas para disminuir la disponibilidad de cadmio en suelos de cacaoterasTécnicas para disminuir la disponibilidad de cadmio en suelos de cacaoteras
Técnicas para disminuir la disponibilidad de cadmio en suelos de cacaoteras
 
Cacao and Cadmium Research at Penn State
Cacao and Cadmium Research at Penn StateCacao and Cadmium Research at Penn State
Cacao and Cadmium Research at Penn State
 
Aportes para el manejo de Cd en cacao
Aportes para el manejo de Cd en cacaoAportes para el manejo de Cd en cacao
Aportes para el manejo de Cd en cacao
 
CENTRO DE INNOVACIÓN DEL CACAO PERÚ
CENTRO DE INNOVACIÓN DEL CACAO PERÚCENTRO DE INNOVACIÓN DEL CACAO PERÚ
CENTRO DE INNOVACIÓN DEL CACAO PERÚ
 
Investigaciones sore Cadmio en el Cacao Colombiano
Investigaciones sore Cadmio en el Cacao ColombianoInvestigaciones sore Cadmio en el Cacao Colombiano
Investigaciones sore Cadmio en el Cacao Colombiano
 
Avances de investigación en cd en cacao
Avances de investigación en cd en cacaoAvances de investigación en cd en cacao
Avances de investigación en cd en cacao
 

Dernier

Artificial Intelligence In Microbiology by Dr. Prince C P
Artificial Intelligence In Microbiology by Dr. Prince C PArtificial Intelligence In Microbiology by Dr. Prince C P
Artificial Intelligence In Microbiology by Dr. Prince C PPRINCE C P
 
Nightside clouds and disequilibrium chemistry on the hot Jupiter WASP-43b
Nightside clouds and disequilibrium chemistry on the hot Jupiter WASP-43bNightside clouds and disequilibrium chemistry on the hot Jupiter WASP-43b
Nightside clouds and disequilibrium chemistry on the hot Jupiter WASP-43bSérgio Sacani
 
Recombination DNA Technology (Nucleic Acid Hybridization )
Recombination DNA Technology (Nucleic Acid Hybridization )Recombination DNA Technology (Nucleic Acid Hybridization )
Recombination DNA Technology (Nucleic Acid Hybridization )aarthirajkumar25
 
Biopesticide (2).pptx .This slides helps to know the different types of biop...
Biopesticide (2).pptx  .This slides helps to know the different types of biop...Biopesticide (2).pptx  .This slides helps to know the different types of biop...
Biopesticide (2).pptx .This slides helps to know the different types of biop...RohitNehra6
 
Zoology 4th semester series (krishna).pdf
Zoology 4th semester series (krishna).pdfZoology 4th semester series (krishna).pdf
Zoology 4th semester series (krishna).pdfSumit Kumar yadav
 
Orientation, design and principles of polyhouse
Orientation, design and principles of polyhouseOrientation, design and principles of polyhouse
Orientation, design and principles of polyhousejana861314
 
Biological Classification BioHack (3).pdf
Biological Classification BioHack (3).pdfBiological Classification BioHack (3).pdf
Biological Classification BioHack (3).pdfmuntazimhurra
 
Stunning ➥8448380779▻ Call Girls In Panchshil Enclave Delhi NCR
Stunning ➥8448380779▻ Call Girls In Panchshil Enclave Delhi NCRStunning ➥8448380779▻ Call Girls In Panchshil Enclave Delhi NCR
Stunning ➥8448380779▻ Call Girls In Panchshil Enclave Delhi NCRDelhi Call girls
 
Pests of cotton_Sucking_Pests_Dr.UPR.pdf
Pests of cotton_Sucking_Pests_Dr.UPR.pdfPests of cotton_Sucking_Pests_Dr.UPR.pdf
Pests of cotton_Sucking_Pests_Dr.UPR.pdfPirithiRaju
 
G9 Science Q4- Week 1-2 Projectile Motion.ppt
G9 Science Q4- Week 1-2 Projectile Motion.pptG9 Science Q4- Week 1-2 Projectile Motion.ppt
G9 Science Q4- Week 1-2 Projectile Motion.pptMAESTRELLAMesa2
 
Nanoparticles synthesis and characterization​ ​
Nanoparticles synthesis and characterization​  ​Nanoparticles synthesis and characterization​  ​
Nanoparticles synthesis and characterization​ ​kaibalyasahoo82800
 
Botany krishna series 2nd semester Only Mcq type questions
Botany krishna series 2nd semester Only Mcq type questionsBotany krishna series 2nd semester Only Mcq type questions
Botany krishna series 2nd semester Only Mcq type questionsSumit Kumar yadav
 
Chemistry 4th semester series (krishna).pdf
Chemistry 4th semester series (krishna).pdfChemistry 4th semester series (krishna).pdf
Chemistry 4th semester series (krishna).pdfSumit Kumar yadav
 
Bentham & Hooker's Classification. along with the merits and demerits of the ...
Bentham & Hooker's Classification. along with the merits and demerits of the ...Bentham & Hooker's Classification. along with the merits and demerits of the ...
Bentham & Hooker's Classification. along with the merits and demerits of the ...Nistarini College, Purulia (W.B) India
 
TEST BANK For Radiologic Science for Technologists, 12th Edition by Stewart C...
TEST BANK For Radiologic Science for Technologists, 12th Edition by Stewart C...TEST BANK For Radiologic Science for Technologists, 12th Edition by Stewart C...
TEST BANK For Radiologic Science for Technologists, 12th Edition by Stewart C...ssifa0344
 
Disentangling the origin of chemical differences using GHOST
Disentangling the origin of chemical differences using GHOSTDisentangling the origin of chemical differences using GHOST
Disentangling the origin of chemical differences using GHOSTSérgio Sacani
 
Isotopic evidence of long-lived volcanism on Io
Isotopic evidence of long-lived volcanism on IoIsotopic evidence of long-lived volcanism on Io
Isotopic evidence of long-lived volcanism on IoSérgio Sacani
 

Dernier (20)

Artificial Intelligence In Microbiology by Dr. Prince C P
Artificial Intelligence In Microbiology by Dr. Prince C PArtificial Intelligence In Microbiology by Dr. Prince C P
Artificial Intelligence In Microbiology by Dr. Prince C P
 
Nightside clouds and disequilibrium chemistry on the hot Jupiter WASP-43b
Nightside clouds and disequilibrium chemistry on the hot Jupiter WASP-43bNightside clouds and disequilibrium chemistry on the hot Jupiter WASP-43b
Nightside clouds and disequilibrium chemistry on the hot Jupiter WASP-43b
 
Recombination DNA Technology (Nucleic Acid Hybridization )
Recombination DNA Technology (Nucleic Acid Hybridization )Recombination DNA Technology (Nucleic Acid Hybridization )
Recombination DNA Technology (Nucleic Acid Hybridization )
 
Biopesticide (2).pptx .This slides helps to know the different types of biop...
Biopesticide (2).pptx  .This slides helps to know the different types of biop...Biopesticide (2).pptx  .This slides helps to know the different types of biop...
Biopesticide (2).pptx .This slides helps to know the different types of biop...
 
Zoology 4th semester series (krishna).pdf
Zoology 4th semester series (krishna).pdfZoology 4th semester series (krishna).pdf
Zoology 4th semester series (krishna).pdf
 
Orientation, design and principles of polyhouse
Orientation, design and principles of polyhouseOrientation, design and principles of polyhouse
Orientation, design and principles of polyhouse
 
Biological Classification BioHack (3).pdf
Biological Classification BioHack (3).pdfBiological Classification BioHack (3).pdf
Biological Classification BioHack (3).pdf
 
Stunning ➥8448380779▻ Call Girls In Panchshil Enclave Delhi NCR
Stunning ➥8448380779▻ Call Girls In Panchshil Enclave Delhi NCRStunning ➥8448380779▻ Call Girls In Panchshil Enclave Delhi NCR
Stunning ➥8448380779▻ Call Girls In Panchshil Enclave Delhi NCR
 
Pests of cotton_Sucking_Pests_Dr.UPR.pdf
Pests of cotton_Sucking_Pests_Dr.UPR.pdfPests of cotton_Sucking_Pests_Dr.UPR.pdf
Pests of cotton_Sucking_Pests_Dr.UPR.pdf
 
G9 Science Q4- Week 1-2 Projectile Motion.ppt
G9 Science Q4- Week 1-2 Projectile Motion.pptG9 Science Q4- Week 1-2 Projectile Motion.ppt
G9 Science Q4- Week 1-2 Projectile Motion.ppt
 
Engler and Prantl system of classification in plant taxonomy
Engler and Prantl system of classification in plant taxonomyEngler and Prantl system of classification in plant taxonomy
Engler and Prantl system of classification in plant taxonomy
 
CELL -Structural and Functional unit of life.pdf
CELL -Structural and Functional unit of life.pdfCELL -Structural and Functional unit of life.pdf
CELL -Structural and Functional unit of life.pdf
 
Nanoparticles synthesis and characterization​ ​
Nanoparticles synthesis and characterization​  ​Nanoparticles synthesis and characterization​  ​
Nanoparticles synthesis and characterization​ ​
 
Botany krishna series 2nd semester Only Mcq type questions
Botany krishna series 2nd semester Only Mcq type questionsBotany krishna series 2nd semester Only Mcq type questions
Botany krishna series 2nd semester Only Mcq type questions
 
Chemistry 4th semester series (krishna).pdf
Chemistry 4th semester series (krishna).pdfChemistry 4th semester series (krishna).pdf
Chemistry 4th semester series (krishna).pdf
 
The Philosophy of Science
The Philosophy of ScienceThe Philosophy of Science
The Philosophy of Science
 
Bentham & Hooker's Classification. along with the merits and demerits of the ...
Bentham & Hooker's Classification. along with the merits and demerits of the ...Bentham & Hooker's Classification. along with the merits and demerits of the ...
Bentham & Hooker's Classification. along with the merits and demerits of the ...
 
TEST BANK For Radiologic Science for Technologists, 12th Edition by Stewart C...
TEST BANK For Radiologic Science for Technologists, 12th Edition by Stewart C...TEST BANK For Radiologic Science for Technologists, 12th Edition by Stewart C...
TEST BANK For Radiologic Science for Technologists, 12th Edition by Stewart C...
 
Disentangling the origin of chemical differences using GHOST
Disentangling the origin of chemical differences using GHOSTDisentangling the origin of chemical differences using GHOST
Disentangling the origin of chemical differences using GHOST
 
Isotopic evidence of long-lived volcanism on Io
Isotopic evidence of long-lived volcanism on IoIsotopic evidence of long-lived volcanism on Io
Isotopic evidence of long-lived volcanism on Io
 

Towards a functional analysis of the major factors involved in the reproductive barrier between Asian and African cultivated species of rice

  • 1. Towards a functional analysis of the major factors involved in the reproductive barrier between Asian and African cultivated species of rice Andrés GUTIÉRREZ January 22, 2016
  • 2.  Model plant for genetics and genomics studies - Diploid species: 2n = 24, AA - Genome size small: 390 Mb - Short growth duration - Efficient genetic transformation - Extensive genomic resources: High-quality reference sequence, dense molecular maps, mutant libraries Introduction Rice (Oryza sativa): One of the most important crops in the world 2  Oryza sativa complex (AA-genome type) Source: FAO, 2004
  • 3.  Many traits of agronomical interest (After Ali et al., 2010) Introduction Using AA genome species of rice to discover genes of importance 3  Cultivated species: O. sativa and O. glaberrima
  • 4. 4 Introduction Oryza glaberrima: A source for the improvement of Oryza sativa • Diploid species: 2n = 24, AA • Genome sequenced • Resistance or tolerance to abiotic and biotic stresses • Traits have been combined with high yield O. sativa acc.  Strong reproductive barrier hamper his full utilization Source: archive.gramene.org
  • 5. Pre-mating isolation Prevent the copulation and fusion of gametes of interspecific crosses Post-mating isolation After mating has occurred => prevent fertilization or formation of zygotes hybrids Introduction • Habitat Isolation • Temporal Isolation • Behavioral Isolation • Mechanical Isolation • Gametic Mortality Introduction There are two basic categories of reproductive barriers 5
  • 6. Pre-zygotic Isolation Mechanisms Pollen–pistil interactions Post-zygotic Isolation Mechanism • Gametic incompatibility • Zygote dies after fertilization • Hybrid inviability • Hybrid breakdown • Hybrid Sterility Arrest of the development of young zygotes Introduction Post-mating isolation 6 Hybrid Sterility Inability to form functional gametes in a hybrid due to disturbances in sex-cell development or in meiosis, caused by incompatible genetic constitution
  • 7. Introduction What is the importance of studying hybrid sterility?  For understanding biology of reproduction When, where and how action of genes involved in reproduction take place  For studying evolution Hybrid sterility is one of the mechanisms of reproductive barrier between species  For breeding Sterility decreases yield Hybrid sterility genes prevent the introgression of useful genes
  • 8. • This phenomenon is one of the strongest post-zygotic reproductive barriers in Oryza species • Use of O. glaberrima in breeding is limited • Hybrid sterility prevent the introgression of useful genes Introduction Hybrid sterility between O. sativa x O. glaberrima O. sativa (Asian rice, AA genome) O. glaberrima (African rice, AA genome) F1 hybrid Totally male sterile Partially female sterile 8
  • 9. Introduction Hybrid sterility between O. sativa x O. glaberrima  Several loci causing hybrid sterility O. sativa x O. glaberrima => S1 locus exert the strong effect  Epistatic interactions between these loci and S1 Garavito et al., 2010 9
  • 10. • Genetics: - S1 locus is the main factor of hybrid sterility between O. sativa X O. glaberrima (Sano, 1990) - S1 is a complex formed by three linked loci S1A, S1 and S1B • Cytology: - Abnormalities in gametophytes Pollen semi-sterility Normal embryo sac Abnormal embryo sac Koide et al., 2008 Introduction Hybrid sterility between O. sativa x O. glaberrima - The effect of S1 is Universal (Tao, 2010) 10 Garavito et al., 2010 Guyot et al., 2011
  • 11. • Female factor in a 27.8 kbp region nested in the male factor region • Both male and female gamete elimination are probably controled by the same factor(s) Garavito et al.,2010 Introduction Fine mapping of the S1 locus Garavito et al.,2010 11 • Model of gamete elimination
  • 12. Guyot et al., 2011 Garavito et al.,2010 200 400 600 800 200400600800 Nipponbare(849kpb) CG14 (813 kpb) S1S1A S1B O. sativa (Nipponbare) O. glaberrima (CG14) ENOD-93 ENOD-93 Ribos_biog F-box ENOD-93 ENOD-93 ENOD-93 Ribos_biog F-box ENOD-93 S1 F-box F-box_dup F-box S1A Introduction Structural genomics 12 S1B remains to be elucidated
  • 13. Introduction The F-box is a protein motif of approximately 50 amino acids that functions as a site of protein-protein interaction Lechner et al. 2006 Current Opinion in Plant Biology. 9:631-638
  • 14. 14 Introduction F-box proteins are involved in self-incompatibility and floral organ determination
  • 15. Introduction F-box as candidate for S1 & S1A F-box proteins in rice F-box at S1 locus RiceXpro DB Jain et al., 2007 Classification of 687 F-box proteins based on their domain architecture 15
  • 16. 4. To investigate if the F-box plays a role in the development of male gametophytes Objective To study the nature of the S1 locus 1. To characterize the sterile phenotype and to precise the cellular stage where gamete development defect occurs 3. To evaluate the temporal and spatial expression of the F-box candidate genes 2. To identify patterns of sequence divergence of the F-box candidate orthologous genes 5. To verify the hypothesis that F-box is actually S1
  • 17. - O. sativa: Caiapo - O. glaberrima: MG12 - Introgression line: L229 BC3DH from Caiapo x MG12 (S1 g Introgressed) CSSLs introgression Lines S1 region _O. glaberrima Chr. 6 S1Ag S1 g S1Bg L229 BC3DH O. sativa L229 O. glaberrima 17 Materials and Methods Isolation of the S1 region Gutierrez et al., 2010
  • 18. 229 line (BC3DH) X O. sativa (Caiapo) Chr. 6 S1Ag S1 g S1Bg S1As S1 s S1Bs • Panicle, pollen and embryo sac evaluation • Cytology observations • Gene expression analysis S1Ag S1As S1Bs BC4F1 S1 g S1Bg S1 s 18 Materials and Methods Genetic stocks
  • 19. Gutierrez et al., 2015 (submitted) 19 Materials and Methods Evaluation at different stages of O. sativa, O.glaberrima & L229_F1 Female gametophyte development Male gametophyte development
  • 20. 4. To investigate if the F-box plays a role in the development of male gametophytes Objective 3. To evaluate the temporal and spatial expression of the F-box candidate genes 2. To identify patterns of sequence divergence of the F-box candidate orthologous genes 5. To verify the hypothesis that F-box is actually S1  Panicle, pollen grains and embryo sac fertility evaluation  Histology analysis 1. To characterize the sterile phenotype and to precise the cellular stage where gamete development defect occurs 1. To characterize the sterile phenotype and to precise the cellular stage where gamete development defect occurs
  • 21. 0% 10% 20% 30% 40% 50% 60% 70% 80% 90% 100% 110% Caiapo MG12 L229-F1 Panicle Fertility Pollen grain fertility DAPI Pollen germination Embryo sac fertility O. sativa L229-F1 O. glaberrima Results Panicle Fertility Reduced fertility in the L229-F1 21
  • 22. L229-F1O. sativa 0% 10% 20% 30% 40% 50% 60% 70% 80% 90% 100% 110% Caiapo MG12 L229-F1 Panicle Fertility Pollen grain fertility DAPI Pollen germination Embryo sac fertility Results Pollen grain fertility 22
  • 23. Msp MP AP Msp MP Results Male gametophyte development in O. sativa and L229_F1 Pollen grain abortion in the hybrid seems to occur at the early microspore stage Meiosis O. sativa L229_F1 Early Microspore Mitosis Maturation 23
  • 24. 0% 10% 20% 30% 40% 50% 60% 70% 80% 90% 100% 110% Caiapo MG12 L229-F1 Panicle Fertility Pollen grain fertility DAPI Pollen germination Embryo sac fertility O. sativa L229-F1 Results Embryo sac fertility 43.75% embryo sacs were aborted in the L229-F1 24
  • 25. dm fm dm Results Female gametophyte development in O. sativa and L229_F1 Embryo sac abortion in the hybrid seems to occur after completion of meiosis MMC Meiosis Maturation O. sativa L229_F1 25
  • 26. Conclusion  L229_F1 showed around 50% of pollen and embryo sac sterility and 78% of panicle sterility  Pollen grain abortion in L229_F1 occur at the early microspore stage  Embryo sac abortion in L229_F1 occur after completion of meiosis Precise determination of abnormalities
  • 27. 4. To investigate if the F-box plays a role in the development of male gametophytes Objective 3. To evaluate the temporal and spatial expression of the F-box candidate genes 2. To identify patterns of sequence divergence of the F-box candidate orthologous genes 5. To verify the hypothesis that F-box is actually S1 2. To identify patterns of sequence divergence of the F-box candidate orthologous genes 1. To characterize the sterile phenotype and to precise the cellular stage where gamete development defect occurs Sequence comparison and gene structure of orthologous F-box alleles
  • 28. Results F-box at S1 locus is an FBL (F-box and LRR) OsFBL-185 Pairwise % Identity Genomic: 84.0% CDS: 98.1%
  • 29. Results F-box at S1 locus (OsFBL-185) OsFBL-185 lacks an Arginine at the 15th position of the first exon F-box domain LRR domain 29 O. sativa O. glaberrima O. sativa O. glaberrima O. sativa O. glaberrima O. sativa O. glaberrima O. sativa O. glaberrima O. sativa O. glaberrima O. sativa O. glaberrima O. sativa O. glaberrima O. sativa O. glaberrima
  • 30. Results F-box at S1A locus is an FBL (F-box and LRR) OsFBL-184 30 Pairwise % Identity Genomic: 94.4% CDS: 96.9%
  • 31. Results F-box at S1A locus (OsFBL-184) Two amino acid conversion in the F-box domain and two in the LRR domain F-box domain LRR domain 31 O. sativa O. glaberrima O. sativa O. glaberrima O. sativa O. glaberrima O. sativa O. glaberrima O. sativa O. glaberrima O. sativa O. glaberrima O. sativa O. glaberrima O. sativa O. glaberrima O. sativa O. glaberrima
  • 32. Conclusion  There are important structural changes between the orthologous genes (S1 and S1A) => OsFBL-185 lacks an Arginine at the 15th position of the first exon => Two amino acid conversion in the F-box domain and two in the LRR domain in OsFBL-184
  • 33. 4. To investigate if the F-box plays a role in the development of male gametophytes Objective 3. To evaluate the temporal and spatial expression of the F-box candidate genes 2. To identify patterns of sequence divergence of the F-box candidate orthologous genes 5. To verify the hypothesis that F-box is actually S1 3. To evaluate the temporal and spatial expression of the F-box candidate genes 1. To characterize the sterile phenotype and to precise the cellular stage where gamete development defect occurs  qPCR analysis  in situ hybridization
  • 34. Highest expression in the hybrid at critical meiosis/mitosis stages Results Expression analysis of F-box at S1 locus O. sativa O. glaberrima S1A S1 < < < 0 0.2 0.4 0.6 0.8 1 1.2 < 2 cm 2 - 5 cm 6 - 9 cm 10 - 13 cm 14 - 17 cm > 18 cm Relativeexpression 0 0.2 0.4 0.6 0.8 1 1.2 1.4 < 2 cm 2 - 5 cm 6 - 9 cm 10 - 13 cm 14 - 17 cm > 18 cm Relativeexpression MaturationMMC Meiosis Mitosis I - II Mitosis III PMC Meiosis Microspore formation Mitosis I Mitosis II - Maturation Floral organs differentiation 0 0.2 0.4 0.6 0.8 1 1.2 1.4 Spikelet Palea-Lemma-Glumes Pistil Stamen Caiapo BC4F1 MaturationMMC Meiosis Mitosis I - II Mitosis III PMC Meiosis Microspore formation Mitosis I Mitosis II - Maturation Floral organs differentiation 0 0.2 0.4 0.6 0.8 1 1.2 1.4 Spikelet Palea-Lemma-Glumes Pistil Stamen MG12 BC4F1 34
  • 35. Specifically expressed in the embryo sac and pollen grains in development Results Spatial expression of F-box at S1 locus in female and male gametophytes Caiapo L229_BC4F1 MG12 Anti-sense probe Sense probe Anti-sense probe Sense probe Caiapo L229_BC4F1 LNA probe_O. sativa Caiapo 35 MG12
  • 36. 0 0.5 1 1.5 2 2.5 < 2 cm 2 - 5 cm 6 - 9 cm 10 - 13 cm 14 - 17 cm > 18 cm Relativeexpression Highest expression in the hybrid at floral organ differentiation and meiosis/mitosis stages Results Expression analysis of F-box at S1A locus S1A S1 O. sativa O. glaberrima 0 0.2 0.4 0.6 0.8 1 1.2 1.4 1.6 < 2 cm 2 - 5 cm 6 - 9 cm 10 - 13 cm 14 - 17 cm > 18 cm Relativeexpression MaturationMMC Meiosis Mitosis I - II Mitosis III PMC Meiosis Microspore formation Mitosis I Mitosis II - Maturation Floral organs differentiation MaturationMMC Meiosis Mitosis I - II Mitosis III PMC Meiosis Microspore formation Mitosis I Mitosis II - Maturation Floral organs differentiation 0 0.5 1 1.5 2 2.5 Spikelet Palea-Lemma-Glumes Pistil Stamen Caiapo BC4F1 0 0.2 0.4 0.6 0.8 1 1.2 1.4 1.6 Spikelet Palea-Lemma-Glumes Pistil Stamen MG12 BC4F1 36
  • 37. Conclusion  The F-box genes of S1 and S1A in the hybrid showed highest expression at Critical meiosis/mitosis stages The F-box OsFBL-185 is specifically expressed in the immature embryo sac and pollen grains
  • 38. 4. To investigate if the F-box plays a role in the development of male gametophytes Objective 3. To evaluate the temporal and spatial expression of the F-box candidate genes 2. To identify patterns of sequence divergence of the F-box candidate orthologous genes 5. To verify the hypothesis that F-box is actually S1 4. To investigate if the F-box plays a role in the development of male gametophytes 1. To characterize the sterile phenotype and to precise the cellular stage where gamete development defect occurs Knock-out of the F-box OsFBL-185 using the CRISPR/Cas9 system
  • 39. Expression vector pOsUbi-Cas9 Cas9/sgRNA complex Materials and Methods Functional validation of OsFBL-185 through CRISPR-Cas9 system Prokaryotic immune system that confers resistance to foreign genetic elements such as plasmids and phages sgRNA_S1-1 sgRNA_S1-2 sgRNA_S1-3 Selected sgRNA target sites of OsFBL-185 39
  • 40. Results Functional validation of OsFBL-185 through CRISPR-Cas9 system Transformed plants in the T0 generation  A total of 79 plants were obtained  Vegetative phenotype similar to WT  Pollen fertility of 72 lines was observed WT Transgenic 40  Pollen fertility of 72 lines was observed
  • 41. Results Functional validation of OsFBL-185 through CRISPR-Cas9 system sgRNA_S1-1 sgRNA_S1-2 sgRNA_S1-3 T7 assay 41  From 72 lines observed: 56 showed a deletion in the OsFBL-185 gene. From these 56 lines: 22 (39.3%) => partial or complete pollen sterility 34 (60.7%) => pollen fertile
  • 42. Results Functional validation of OsFBL-185 through CRISPR-Cas9 system Deletion-Phenotype 1 Deletion-Phenotype 2 Fertile Semi-sterile Sterile OsFBL-185 seems to play a significant role in the development of male gametes42 Pollen grain evaluation
  • 43. 4. To investigate if the F-box plays a role in the development of male gametophytes Objective 3. To evaluate the temporal and spatial expression of the F-box candidate genes 2. To identify patterns of sequence divergence of the F-box candidate orthologous genes 5. To verify the hypothesis that F-box is actually S1 5. To verify the hypothesis that F-box is actually S1 1. To characterize the sterile phenotype and to precise the cellular stage where gamete development defect occurs Functional complementation strategy
  • 44. Results Validation of OsFBL-185 through functional complementation Genetic transformation of Caiapo (O. sativa) with the F-box “S1 g” from O. glaberrima Over-Express-O. glaberrima-CDS Over-Express-O. sativa-CDS
  • 45. T0 generation Results Validation of OsFBL-185 through functional complementation 45
  • 46. O. sativa Over_sat Over_glab Pollen grain evaluation Results Validation of OsFBL-185 through functional complementation 0.00 20.00 40.00 60.00 80.00 100.00 O. sativa Over_sat Over_glab 46 Failure in male gamete development in the O. sativa x O. glaberrima hybrid is due to allelic interaction between S1 g and S1 s
  • 47. Conclusion  OsFBL-185 seems to play a significant role in the development and viability of male gametes in rice => knock-out by CRISPR/Cas9 system - Mutants with deletions showed a sterile phenotype  OsFBL-185 F-box is actually S1, the main sterility factor in the interspecific O. sativa x O. glaberrima hybrid => Functional complementation - Over expression of S1 g in O. sativa show a sterile phenotype like the natural hybrid
  • 48. General Conclusion OsFBL-185 is actually S1, the main sterility factor in the interspecific O. sativa x O. glaberrima hybrid 48 OsFBL-1850 0.2 0.4 0.6 0.8 1 1.2 1.4 0 0.2 0.4 0.6 0.8 1 1.2 Pollen grain sterility
  • 49. Pollen abortion in the hybrid is possibly due to the alteration of a target protein anchored by OsFBL-185 OsFBL-185 may assemble into an active SCF complex which interact with an unknown target protein => Protein Degradation 49
  • 50. Perspectives  Functional analysis: Validation of CRISPR and Complementation results => Characterization of T1 plants by co-segregation analysis  What it is the function of the F-box OsFBL-185?  Does this protein form an SCF Complex?  What is the Target Protein? => Identification of protein subunits of the SCF complex => Bacterial 2 hybrid assays => Protein expression and allelic imbalance  What are OsFBL-185 interactions? => Bimolecular fluorescence complementation (BiFC) assay Elucidation of pathways at the molecular level in O. sativa and the hybrid 50
  • 51. Perspectives  Develop compatible interspecific bridges Using CRISPR/Cas9 by suppressing the expression of the S1 g allele and/or for large chromosomal deletions => S1 region  Identification of factors involved in female gamete development (S1A - S1B loci) => RNA-seq and transcriptome profiles of recombinants lines around S1 51
  • 52. IRD Mathias Lorieux Hélène Adam Laurence Albar François Sabot Christine Tranchant Pierre Larmande Hélène Pidon Cecile Monat Harold Chrestin Sophie Cheron Elise Grenon Anais Roudiere Myriam Collin Stéphane Jouannic Alain Ghesquière CIRAD Emmanuel Guiderdoni Donaldo Meynard Anne Cecile Meunier Jérôme Puig Mumu Aurore Vernet Martine Bes Julie Petit Acknowledgments 52 CIAT Silvio James Carabalí Natalia Franco Lady Arbelaez Alex Aguirre Marco Brito Victor Lozano Paul Chavarriaga Sandra Vidal Didier Marin
  • 53. Thank you for your attention