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Transcriptomic Analysis Reveals a Comprehensive Calcium- and Phytohormone-Dominated Signaling Response in Leymus chinensis Self-Incompatibility

Sheepgrass (Leymus chinensis (Trin.) Tzvel.) is an economically and ecologically important forage in the grass family. Self-incompatibility (SI) limits its seed production due to the low seed-setting rate after self-pollination. However, investigations into the molecular mechanisms of sheepgrass SI...

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Autores principales: Chen, Shuangyan, Jia, Junting, Cheng, Liqin, Zhao, Pincang, Qi, Dongmei, Yang, Weiguang, Liu, Hui, Dong, Xiaobing, Li, Xiaoxia, Liu, Gongshe
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6539167/
https://www.ncbi.nlm.nih.gov/pubmed/31085987
http://dx.doi.org/10.3390/ijms20092356
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author Chen, Shuangyan
Jia, Junting
Cheng, Liqin
Zhao, Pincang
Qi, Dongmei
Yang, Weiguang
Liu, Hui
Dong, Xiaobing
Li, Xiaoxia
Liu, Gongshe
author_facet Chen, Shuangyan
Jia, Junting
Cheng, Liqin
Zhao, Pincang
Qi, Dongmei
Yang, Weiguang
Liu, Hui
Dong, Xiaobing
Li, Xiaoxia
Liu, Gongshe
author_sort Chen, Shuangyan
collection PubMed
description Sheepgrass (Leymus chinensis (Trin.) Tzvel.) is an economically and ecologically important forage in the grass family. Self-incompatibility (SI) limits its seed production due to the low seed-setting rate after self-pollination. However, investigations into the molecular mechanisms of sheepgrass SI are lacking. Therefore, microscopic observation of pollen germination and pollen tube growth, as well as transcriptomic analyses of pistils after self- and cross-pollination, were performed. The results indicated that pollen tube growth was rapidly inhibited from 10 to 30 min after self-pollination and subsequently stopped but preceded normally after cross-pollination. Time course comparative transcriptomics revealed different transcriptome dynamics between self- and cross-pollination. A pool of SI-related signaling genes and pathways was generated, including genes related to calcium (Ca(2+)) signaling, protein phosphorylation, plant hormone, reactive oxygen species (ROS), nitric oxide (NO), cytoskeleton, and programmed cell death (PCD). A putative SI response molecular model in sheepgrass was presented. The model shows that SI may trigger a comprehensive calcium- and phytohormone-dominated signaling cascade and activate PCD, which may explain the rapid inhibition of self-pollen tube growth as observed by cytological analyses. These results provided new insight into the molecular mechanisms of sheepgrass (grass family) SI.
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spelling pubmed-65391672019-06-04 Transcriptomic Analysis Reveals a Comprehensive Calcium- and Phytohormone-Dominated Signaling Response in Leymus chinensis Self-Incompatibility Chen, Shuangyan Jia, Junting Cheng, Liqin Zhao, Pincang Qi, Dongmei Yang, Weiguang Liu, Hui Dong, Xiaobing Li, Xiaoxia Liu, Gongshe Int J Mol Sci Article Sheepgrass (Leymus chinensis (Trin.) Tzvel.) is an economically and ecologically important forage in the grass family. Self-incompatibility (SI) limits its seed production due to the low seed-setting rate after self-pollination. However, investigations into the molecular mechanisms of sheepgrass SI are lacking. Therefore, microscopic observation of pollen germination and pollen tube growth, as well as transcriptomic analyses of pistils after self- and cross-pollination, were performed. The results indicated that pollen tube growth was rapidly inhibited from 10 to 30 min after self-pollination and subsequently stopped but preceded normally after cross-pollination. Time course comparative transcriptomics revealed different transcriptome dynamics between self- and cross-pollination. A pool of SI-related signaling genes and pathways was generated, including genes related to calcium (Ca(2+)) signaling, protein phosphorylation, plant hormone, reactive oxygen species (ROS), nitric oxide (NO), cytoskeleton, and programmed cell death (PCD). A putative SI response molecular model in sheepgrass was presented. The model shows that SI may trigger a comprehensive calcium- and phytohormone-dominated signaling cascade and activate PCD, which may explain the rapid inhibition of self-pollen tube growth as observed by cytological analyses. These results provided new insight into the molecular mechanisms of sheepgrass (grass family) SI. MDPI 2019-05-13 /pmc/articles/PMC6539167/ /pubmed/31085987 http://dx.doi.org/10.3390/ijms20092356 Text en © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Chen, Shuangyan
Jia, Junting
Cheng, Liqin
Zhao, Pincang
Qi, Dongmei
Yang, Weiguang
Liu, Hui
Dong, Xiaobing
Li, Xiaoxia
Liu, Gongshe
Transcriptomic Analysis Reveals a Comprehensive Calcium- and Phytohormone-Dominated Signaling Response in Leymus chinensis Self-Incompatibility
title Transcriptomic Analysis Reveals a Comprehensive Calcium- and Phytohormone-Dominated Signaling Response in Leymus chinensis Self-Incompatibility
title_full Transcriptomic Analysis Reveals a Comprehensive Calcium- and Phytohormone-Dominated Signaling Response in Leymus chinensis Self-Incompatibility
title_fullStr Transcriptomic Analysis Reveals a Comprehensive Calcium- and Phytohormone-Dominated Signaling Response in Leymus chinensis Self-Incompatibility
title_full_unstemmed Transcriptomic Analysis Reveals a Comprehensive Calcium- and Phytohormone-Dominated Signaling Response in Leymus chinensis Self-Incompatibility
title_short Transcriptomic Analysis Reveals a Comprehensive Calcium- and Phytohormone-Dominated Signaling Response in Leymus chinensis Self-Incompatibility
title_sort transcriptomic analysis reveals a comprehensive calcium- and phytohormone-dominated signaling response in leymus chinensis self-incompatibility
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6539167/
https://www.ncbi.nlm.nih.gov/pubmed/31085987
http://dx.doi.org/10.3390/ijms20092356
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