A mutation in THREONINE SYNTHASE 1 uncouples proliferation and transition domains of the root apical meristem: experimental evidence and in silico proposed mechanism

Author:

García-Gómez Monica L.1,Reyes-Hernández Blanca J.1,Sahoo Debee P.1ORCID,Napsucialy-Mendivil Selene1,Quintana-Armas Aranza X.1,Pedroza-García José A.1,Shishkova Svetlana1ORCID,Torres-Martínez Héctor H.1,Pacheco-Escobedo Mario A.2ORCID,Dubrovsky Joseph G.1ORCID

Affiliation:

1. Instituto de Biotecnología, Universidad Nacional Autónoma de México (UNAM) 1 Departamento de Biología Molecular de Plantas , , Av. Universidad, 2001, Cuernavaca 62250 , Mexico

2. Facultad de Ciencias de la Salud, Universidad Tecnológica de México – UNITEC MÉXICO – Campus Atizapán 2 , Av. Calacoaya 7, Atizapán de Zaragoza, Estado de México, 52970 , Mexico

Abstract

ABSTRACT A continuum from stem to transit-amplifying to a differentiated cell state is a common theme in multicellular organisms. In the plant root apical meristem (RAM), transit-amplifying cells are organized into two domains: cells from the proliferation domain (PD) are displaced to the transition domain (TD), suggesting that both domains are necessarily coupled. Here, we show that in the Arabidopsis thaliana mto2-2 mutant, in which threonine (Thr) synthesis is affected, the RAM lacks the PD. Through a combination of cell length profile analysis, mathematical modeling and molecular markers, we establish that the PD and TD can be uncoupled. Remarkably, although the RAM of mto2-2 is represented solely by the TD, the known factors of RAM maintenance and auxin signaling are expressed in the mutant. Mathematical modeling predicts that the stem cell niche depends on Thr metabolism and that, when disturbed, the normal continuum of cell states becomes aborted.

Funder

Consejo Nacional de Ciencia y Tecnología

Dirección General de Asuntos del Personal Académico, Universidad Nacional Autónoma de México

Universidad Nacional Autonoma de Mexico

Publisher

The Company of Biologists

Subject

Developmental Biology,Molecular Biology

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