The Maize ropD Gene Christine Neou Dr. John Fowler Botany and Plant Pathology.

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The Maize ropD Gene Christine Neou Dr. John Fowler Botany and Plant Pathology
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Transcript of The Maize ropD Gene Christine Neou Dr. John Fowler Botany and Plant Pathology.

Page 1: The Maize ropD Gene Christine Neou Dr. John Fowler Botany and Plant Pathology.

The Maize ropD GeneChristine Neou

Dr. John FowlerBotany and Plant Pathology

Page 2: The Maize ropD Gene Christine Neou Dr. John Fowler Botany and Plant Pathology.

Why use corn?

Better understanding of how corn and other plants grow and develop

Page 3: The Maize ropD Gene Christine Neou Dr. John Fowler Botany and Plant Pathology.

Why use corn?

Better understanding of how corn and other plants grow and develop

Learn mechanisms by which plants signal a response to stress or respond to disease

Page 4: The Maize ropD Gene Christine Neou Dr. John Fowler Botany and Plant Pathology.

Why use corn?

Better understanding of how corn and other plants grow and develop

Learn mechanisms by which plants signal a response to stress or respond to disease

Use what we learn to perhaps breed plants that are better equipped to respond against stressors

Page 5: The Maize ropD Gene Christine Neou Dr. John Fowler Botany and Plant Pathology.

G proteins - signaling molecules that bind GTP

Family

Ras

Rho

Rab

Arf

Ran

Page 6: The Maize ropD Gene Christine Neou Dr. John Fowler Botany and Plant Pathology.

G proteins - signaling molecules that bind GTP

Family

Ras

Rho

Rab

Arf

Ran

Subfamily

Rho Rac Cdc42 Rop

Page 7: The Maize ropD Gene Christine Neou Dr. John Fowler Botany and Plant Pathology.

G proteins - signaling molecules that bind GTP

Family

Ras

Rho

Rab

Arf

Ran

Subfamily

Rho Rac Cdc42 Rop(Rho of Plants)

Page 8: The Maize ropD Gene Christine Neou Dr. John Fowler Botany and Plant Pathology.

Rop GTPases in Signaling Pathways

Rop

Rop

GDP

GTP

INACTIVE

ACTIVE

Page 9: The Maize ropD Gene Christine Neou Dr. John Fowler Botany and Plant Pathology.

Rop GTPases in Signal Pathways

Binding of effector molecule

Rop

Rop

GDP

GTP

INACTIVE

ACTIVE

Page 10: The Maize ropD Gene Christine Neou Dr. John Fowler Botany and Plant Pathology.

Rop GTPases in Signal Pathways

Binding of effector molecule

Signal for growth, differentiation or survival

Rop

Rop

GDP

GTP

INACTIVE

ACTIVE

Page 11: The Maize ropD Gene Christine Neou Dr. John Fowler Botany and Plant Pathology.

The Role of Rops in Corn

???Function not known

Question: What is the role of Rops in plant growth and development?

At least 9 rops in corn

Page 12: The Maize ropD Gene Christine Neou Dr. John Fowler Botany and Plant Pathology.

The ropD genetic map

Page 13: The Maize ropD Gene Christine Neou Dr. John Fowler Botany and Plant Pathology.

Mutator Transposons

IR IR

Page 14: The Maize ropD Gene Christine Neou Dr. John Fowler Botany and Plant Pathology.

Exons and Introns

Exons - coding region

Intron - sequences that are spliced out

Page 15: The Maize ropD Gene Christine Neou Dr. John Fowler Botany and Plant Pathology.

Goals

Identify plants homozygous for the five alleles

Page 16: The Maize ropD Gene Christine Neou Dr. John Fowler Botany and Plant Pathology.

Goals

Identify plants homozygous for the five alleles

Characterize the five identified alleles by linking to a phenotype

Page 17: The Maize ropD Gene Christine Neou Dr. John Fowler Botany and Plant Pathology.

Goals

Identify plants homozygous for the five alleles

Characterize the five identified alleles by linking to a phenotype

Why homozygous plants?

They are the only plants that will exhibit a mutant phenotype.

Page 18: The Maize ropD Gene Christine Neou Dr. John Fowler Botany and Plant Pathology.

Genotyping by PCR

DNA extraction

Polymerase Chain Reaction (PCR)

3 primers used: 2 gene specific primers

(GSP) Mu primer

Page 19: The Maize ropD Gene Christine Neou Dr. John Fowler Botany and Plant Pathology.

Genotyping by PCR

GSP DF3 located upstream

of mutation

Page 20: The Maize ropD Gene Christine Neou Dr. John Fowler Botany and Plant Pathology.

Genotyping by PCR

GSP DF3 located upstream

of mutation DR5 located

downstream of mutation

Page 21: The Maize ropD Gene Christine Neou Dr. John Fowler Botany and Plant Pathology.

Genotyping by PCR

GSP DF3 located upstream

of mutation DR5 located

downstream of mutation

Mu anneals to inverted repeats of transposon

Page 22: The Maize ropD Gene Christine Neou Dr. John Fowler Botany and Plant Pathology.

Example: Genotyping of mc3 mutation

1 2 3 4Lanes1. DNA ladder2. Wild type3. Homozygote4. Heterozygote

Agarose gel of genotyping PCR Wild type

Homozygote

Heterozygote

Page 23: The Maize ropD Gene Christine Neou Dr. John Fowler Botany and Plant Pathology.

Example: Genotyping of mc3 mutation

1 2 3 4Lanes1. DNA ladder2. Wild type3. Homozygote4. Heterozygote

Agarose gel of genotyping PCR Wild type

Homozygote

Heterozygote

Page 24: The Maize ropD Gene Christine Neou Dr. John Fowler Botany and Plant Pathology.

Example: Genotyping of mc3 mutation

1 2 3 4Lanes1. DNA ladder2. Wild type3. Homozygote4. Heterozygote

Agarose gel of genotyping PCR Wild type

Homozygote

Heterozygote

Page 25: The Maize ropD Gene Christine Neou Dr. John Fowler Botany and Plant Pathology.

Results of Genotyping

Mutation # genotyped # of homozygotes

m1 52 0

m2 15 1

mc2 10 1

mc3 37 8

mc4 9 1

Page 26: The Maize ropD Gene Christine Neou Dr. John Fowler Botany and Plant Pathology.

Example Phenotypes

Page 27: The Maize ropD Gene Christine Neou Dr. John Fowler Botany and Plant Pathology.

Epidermal cells of leaf tissue

Wild type cells - mostly straight rows of cells with stomata spread evenly

Page 28: The Maize ropD Gene Christine Neou Dr. John Fowler Botany and Plant Pathology.

Epidermal cells of leaf tissue

Wild type - mostly straight rows, very few areas of disorganization

Homozygote - larger areas of disorganization

Page 29: The Maize ropD Gene Christine Neou Dr. John Fowler Botany and Plant Pathology.

Epidermal cells at high magnificationWild type Homozygote

Page 30: The Maize ropD Gene Christine Neou Dr. John Fowler Botany and Plant Pathology.

RNA

Mature RNA contains only exons

RNA cDNA

Successful extraction of RNA from one sample

Page 31: The Maize ropD Gene Christine Neou Dr. John Fowler Botany and Plant Pathology.

Conclusions

Observations have yielded no obvious mutant organismal phenotype

Epidermal cell experiments suggest a cell phenotype for homozygous plants

Preliminary data from RNA experiments are promising, experiments are still ongoing

Page 32: The Maize ropD Gene Christine Neou Dr. John Fowler Botany and Plant Pathology.

The future…

Continue the experiments through the rest of the program and through the fall Continue looking for mutant phenotypes for

homozygous plants Use a computer program to analyze

epidermal cells from more plants Get more data from RNA

experiments

Page 33: The Maize ropD Gene Christine Neou Dr. John Fowler Botany and Plant Pathology.

Special Thanks to

Howard Hughes Medical Institute

National Science Foundation

John Fowler and Lab