Transcriptome and Selected Metabolite Analyses Reveal Multiple Points of Ethylene Control during Tomato Fruit Development

Author:

Alba Rob1,Payton Paxton1,Fei Zhanjun1,McQuinn Ryan2,Debbie Paul1,Martin Gregory B.13,Tanksley Steven D.4,Giovannoni James J.12

Affiliation:

1. Boyce Thompson Institute for Plant Research  Cornell University Campus  Ithaca  New York  14853

2. U.S. Department of Agriculture  Agricultural Research Service  Plant  Soil and Nutrition Laboratory  Ithaca  New York  14853

3. Department of Plant Pathology  Cornell University  Ithaca  New York  14853

4. Department of Plant Breeding  Cornell University  Ithaca  New York  14853

Abstract

AbstractTranscriptome profiling via cDNA microarray analysis identified 869 genes that are differentially expressed in developing tomato (Solanum lycopersicum) pericarp. Parallel phenotypic and targeted metabolite comparisons were employed to inform the expression analysis. Transcript accumulation in tomato fruit was observed to be extensively coordinated and often completely dependent on ethylene. Mutation of an ethylene receptor (Never-ripe [Nr]), which reduces ethylene sensitivity and inhibits ripening, alters the expression of 37% of these 869 genes. Nr also influences fruit morphology, seed number, ascorbate accumulation, carotenoid biosynthesis, ethylene evolution, and the expression of many genes during fruit maturation, indicating that ethylene governs multiple aspects of development both prior to and during fruit ripening in tomato. Of the 869 genes identified, 628 share homology (E-value ≤1 × 10−10) with known gene products or known protein domains. Of these 628 loci, 72 share homology with previously described signal transduction or transcription factors, suggesting complex regulatory control. These results demonstrate multiple points of ethylene regulatory control during tomato fruit development and provide new insights into the molecular basis of ethylene-mediated ripening.

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Plant Science

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