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1.
Plant Cell ; 34(5): 1844-1862, 2022 04 26.
Article in English | MEDLINE | ID: mdl-35146519

ABSTRACT

Legumes have adaptive mechanisms that regulate nodulation in response to the amount of nitrogen in the soil. In Lotus japonicus, two NODULE INCEPTION (NIN)-LIKE PROTEIN (NLP) transcription factors, LjNLP4 and LjNLP1, play pivotal roles in the negative regulation of nodulation by controlling the expression of symbiotic genes in high nitrate conditions. Despite an improved understanding of the molecular basis for regulating nodulation, how nitrate plays a role in the signaling pathway to negatively regulate this process is largely unknown. Here, we show that nitrate transport via NITRATE TRANSPORTER 2.1 (LjNRT2.1) is a key step in the NLP signaling pathway to control nodulation. A mutation in the LjNRT2.1 gene attenuates the nitrate-induced control of nodulation. LjNLP1 is necessary and sufficient to induce LjNRT2.1 expression, thereby regulating nitrate uptake/transport. Our data suggest that LjNRT2.1-mediated nitrate uptake/transport is required for LjNLP4 nuclear localization and induction/repression of symbiotic genes. We further show that LjNIN, a positive regulator of nodulation, counteracts the LjNLP1-dependent induction of LjNRT2.1 expression, which is linked to a reduction in nitrate uptake. These findings suggest a plant strategy in which nitrogen acquisition switches from obtaining nitrogen from the soil to symbiotic nitrogen fixation.


Subject(s)
Lotus , Gene Expression Regulation, Plant , Lotus/genetics , Lotus/metabolism , Nitrates/metabolism , Nitrogen/metabolism , Plant Proteins/metabolism , Plant Root Nodulation/genetics , Root Nodules, Plant/genetics , Root Nodules, Plant/metabolism , Soil , Symbiosis/physiology
3.
PLoS Genet ; 15(1): e1007865, 2019 01.
Article in English | MEDLINE | ID: mdl-30605473

ABSTRACT

Nitrogen-fixing rhizobia and arbuscular mycorrhizal fungi (AMF) form symbioses with plant roots and these are established by precise regulation of symbiont accommodation within host plant cells. In model legumes such as Lotus japonicus and Medicago truncatula, rhizobia enter into roots through an intracellular invasion system that depends on the formation of a root-hair infection thread (IT). While IT-mediated intracellular rhizobia invasion is thought to be the most evolutionarily derived invasion system, some studies have indicated that a basal intercellular invasion system can replace it when some nodulation-related factors are genetically modified. In addition, intracellular rhizobia accommodation is suggested to have a similar mechanism as AMF accommodation. Nevertheless, our understanding of the underlying genetic mechanisms is incomplete. Here we identify a L. japonicus nodulation-deficient mutant, with a mutation in the LACK OF SYMBIONT ACCOMMODATION (LAN) gene, in which root-hair IT formation is strongly reduced, but intercellular rhizobial invasion eventually results in functional nodule formation. LjLAN encodes a protein that is homologous to Arabidopsis MEDIATOR 2/29/32 possibly acting as a subunit of a Mediator complex, a multiprotein complex required for gene transcription. We also show that LjLAN acts in parallel with a signaling pathway including LjCYCLOPS. In addition, the lan mutation drastically reduces the colonization levels of AMF. Taken together, our data provide a new factor that has a common role in symbiont accommodation process during root nodule and AM symbiosis.


Subject(s)
Lotus/genetics , Medicago truncatula/genetics , Mycorrhizae/growth & development , Symbiosis/genetics , Gene Expression Regulation, Plant/genetics , Lotus/growth & development , Lotus/microbiology , Medicago truncatula/growth & development , Medicago truncatula/microbiology , Mutation , Mycorrhizae/genetics , Plant Proteins/genetics , Plant Root Nodulation/genetics , Plant Roots/genetics , Plant Roots/growth & development , Plant Roots/microbiology , Rhizobium/genetics , Rhizobium/growth & development , Root Nodules, Plant/genetics , Root Nodules, Plant/growth & development , Root Nodules, Plant/microbiology
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