| Literature DB >> 35512346 |
Kangning Li1, Shunan Zhang1, Shuo Tang1, Jun Zhang1, Hongzhang Dong1, Shihan Yang1, Hongye Qu1, Wei Xuan1, Mian Gu1, Guohua Xu1.
Abstract
Plants adjust root architecture and nitrogen (N) transporter activity to meet the variable N demand, but their integrated regulatory mechanism remains unclear. We have previously reported that a floral factor in rice (Oryza sativa), N-mediated heading date-1 (Nhd1), regulates flowering time. Here, we show that Nhd1 can directly activate the transcription of the high-affinity ammonium (NH4+) transporter 1;3 (OsAMT1;3) and the dual affinity nitrate (NO3-) transporter 2.4 (OsNRT2.4). Knockout of Nhd1 inhibited root growth in the presence of NO3- or a low concentration of NH4+. Compared to the wild-type (WT), nhd1 and osamt1;3 mutants showed a similar decrease in root growth and N uptake under low NH4+ supply, while nhd1 and osnrt2.4 mutants showed comparable root inhibition and altered NO3- translocation in shoots. The defects of nhd1 mutants in NH4+ uptake and root growth response to various N supplies were restored by overexpression of OsAMT1;3 or OsNRT2.4. However, when grown in a paddy field with low N availability, nhd1 mutants accumulated more N and achieved a higher N uptake efficiency (NUpE) due to the delayed flowering time and prolonged growth period. Our findings reveal a molecular mechanism underlying the growth duration-dependent NUpE. © American Society of Plant Biologists 2022. All rights reserved. For permissions, please email: journals.permissions@oup.com.Entities:
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Year: 2022 PMID: 35512346 PMCID: PMC9237666 DOI: 10.1093/plphys/kiac178
Source DB: PubMed Journal: Plant Physiol ISSN: 0032-0889 Impact factor: 8.005