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1.
Nature ; 602(7896): 280-286, 2022 02.
Article in English | MEDLINE | ID: mdl-34937943

ABSTRACT

Grafting is possible in both animals and plants. Although in animals the process requires surgery and is often associated with rejection of non-self, in plants grafting is widespread, and has been used since antiquity for crop improvement1. However, in the monocotyledons, which represent the second largest group of terrestrial plants and include many staple crops, the absence of vascular cambium is thought to preclude grafting2. Here we show that the embryonic hypocotyl allows intra- and inter-specific grafting in all three monocotyledon groups: the commelinids, lilioids and alismatids. We show functional graft unions through histology, application of exogenous fluorescent dyes, complementation assays for movement of endogenous hormones, and growth of plants to maturity. Expression profiling identifies genes that unify the molecular response associated with grafting in monocotyledons and dicotyledons, but also gene families that have not previously been associated with tissue union. Fusion of susceptible wheat scions to oat rootstocks confers resistance to the soil-borne pathogen Gaeumannomyces graminis. Collectively, these data overturn the consensus that monocotyledons cannot form graft unions, and identify the hypocotyl (mesocotyl in grasses) as a meristematic tissue that allows this process. We conclude that graft compatibility is a shared ability among seed-bearing plants.


Subject(s)
Avena , Plant Roots , Plant Shoots , Transplants , Triticum , Ascomycota/pathogenicity , Avena/embryology , Avena/microbiology , Hypocotyl , Meristem , Plant Roots/embryology , Plant Roots/microbiology , Plant Shoots/embryology , Plant Shoots/microbiology , Triticum/embryology , Triticum/microbiology
2.
Development ; 149(5)2022 03 01.
Article in English | MEDLINE | ID: mdl-35217857

ABSTRACT

Cellular regeneration in response to wounding is fundamental to maintain tissue integrity. Various internal factors including hormones and transcription factors mediate healing, but little is known about the role of external factors. To understand how the environment affects regeneration, we investigated the effects of temperature upon the horticulturally relevant process of plant grafting. We found that elevated temperatures accelerated vascular regeneration in Arabidopsis thaliana and tomato grafts. Leaves were crucial for this effect, as blocking auxin transport or mutating PHYTOCHROME INTERACTING FACTOR 4 (PIF4) or YUCCA2/5/8/9 in the cotyledons abolished the temperature enhancement. However, these perturbations did not affect grafting at ambient temperatures, and temperature enhancement of callus formation and tissue adhesion did not require PIF4, suggesting leaf-derived auxin specifically enhanced vascular regeneration in response to elevated temperatures. We also found that elevated temperatures accelerated the formation of inter-plant vascular connections between the parasitic plant Phtheirospermum japonicum and host Arabidopsis, and this effect required shoot-derived auxin from the parasite. Taken together, our results identify a pathway whereby local temperature perception mediates long distance auxin signaling to modify regeneration, grafting and parasitism. This article has an associated 'The people behind the papers' interview.


Subject(s)
Arabidopsis/genetics , Arabidopsis/metabolism , Hot Temperature , Plant Leaves/genetics , Plant Leaves/metabolism , Regeneration/genetics , Signal Transduction/genetics , Arabidopsis Proteins/genetics , Arabidopsis Proteins/metabolism , Basic Helix-Loop-Helix Transcription Factors/genetics , Basic Helix-Loop-Helix Transcription Factors/metabolism , Biological Transport/genetics , Cotyledon/genetics , Cotyledon/metabolism , Cytochrome P-450 Enzyme System/genetics , Cytochrome P-450 Enzyme System/metabolism , Gene Expression Regulation, Plant , Hypocotyl/metabolism , Indoleacetic Acids/metabolism , Solanum lycopersicum/physiology , Mixed Function Oxygenases/genetics , Mixed Function Oxygenases/metabolism , Plants, Genetically Modified
3.
Plant Cell ; 32(10): 3188-3205, 2020 10.
Article in English | MEDLINE | ID: mdl-32753430

ABSTRACT

Cell fate maintenance is an integral part of plant cell differentiation and the production of functional cells, tissues, and organs. Fleshy fruit development is characterized by the accumulation of water and solutes in the enlarging cells of parenchymatous tissues. In tomato (Solanum lycopersicum), this process is associated with endoreduplication in mesocarp cells. The mechanisms that preserve this developmental program, once initiated, remain unknown. We show here that analysis of a previously identified tomato ethyl methanesulfonate-induced mutant that exhibits abnormal mesocarp cell differentiation could help elucidate determinants of fruit cell fate maintenance. We identified and validated the causal locus through mapping-by-sequencing and gene editing, respectively, and performed metabolic, cellular, and transcriptomic analyses of the mutant phenotype. The data indicate that disruption of the SlGBP1 gene, encoding GUANYLATE BINDING PROTEIN1, induces early termination of endoreduplication followed by late divisions of polyploid mesocarp cells, which consequently acquire the characteristics of young proliferative cells. This study reveals a crucial role of plant GBPs in the control of cell cycle genes, and thus, in cell fate maintenance. We propose that SlGBP1 acts as an inhibitor of cell division, a function conserved with the human hGBP-1 protein.


Subject(s)
Fruit/cytology , Fruit/growth & development , Plant Proteins/genetics , Solanum lycopersicum/cytology , CRISPR-Cas Systems , Cell Cycle/genetics , Cell Differentiation , Cell Size , Cell Wall/genetics , Cell Wall/metabolism , Endoreduplication , Fruit/genetics , Fruit/metabolism , GTP-Binding Proteins/genetics , GTP-Binding Proteins/metabolism , Gene Editing , Gene Expression Regulation, Plant , Solanum lycopersicum/genetics , Solanum lycopersicum/metabolism , Mutation , Pectins/genetics , Pectins/metabolism , Phenotype , Plant Cells , Plant Proteins/metabolism , Plants, Genetically Modified , Ploidies
4.
Front Plant Sci ; 8: 988, 2017.
Article in English | MEDLINE | ID: mdl-28659942

ABSTRACT

Key mechanisms controlling fruit weight and shape at the levels of meristem, ovary or very young fruit have already been identified using natural tomato diversity. We reasoned that new developmental modules prominent at later stages of fruit growth could be discovered by using new genetic and phenotypic diversity generated by saturated mutagenesis. Twelve fruit weight and tissue morphology mutants likely affected in late fruit growth were selected among thousands of fruit size and shape EMS mutants available in our tomato EMS mutant collection. Their thorough characterization at organ, tissue and cellular levels revealed two major clusters controlling fruit growth and tissue morphogenesis either through (i) the growth of all fruit tissues through isotropic cell expansion or (ii) only the growth of the pericarp through anisotropic cell expansion. These likely correspond to new cell expansion modules controlling fruit growth and tissue morphogenesis in tomato. Our study therefore opens the way for the identification of new gene regulatory networks controlling tomato fruit growth and morphology.

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