4.4 Article

Overexpression of SlHSP90.2 leads to altered root biomass and architecture in tomato (Solanum lycopersicum)

期刊

PHYSIOLOGY AND MOLECULAR BIOLOGY OF PLANTS
卷 27, 期 4, 页码 713-725

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SPRINGER
DOI: 10.1007/s12298-021-00976-6

关键词

Overexpression; qRT-PCR; Root growth; SlHSP90; 2; Tomato; Transgenic

资金

  1. Department of Biotechnology, Government of India [BT/PR6959/PBD/16/1010/2012]
  2. Central University of Rajasthan, Rajasthan, India
  3. Ramalingaswami Re-entry fellowship program under Department of Biotechnology, Government of India [BT/RLF/Re-entry/22/2017]

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The study reveals that the SlHSP90.2 gene in tomato plays a crucial role in root development, with its overexpression significantly increasing root biomass and architecture, and enhancing tolerance to salinity and drought stresses. This suggests that genetic manipulation of HSP90.2 homologs in other crops could lead to the development of plants with improved root traits and enhanced stress tolerance.
The Heat shock proteins 90 family plays pivotal roles in root growth and plant development. Its isoforms have been identified in several plant species with transcripts presents in almost all stages of plant growth. However, its functional relevance has not been completely established. Therefore, in this study, we provide evidence about the role of SlHSP90.2 in tomato (Solanum lycopersicum) root development. Using tomato cultivars with differing root phenotypes, we have shown that SlHSP90.2 transcripts are in accordance with root architecture, i.e. high rooting cultivars had more expression of SlHSP90.2 as compared to low rooting cultivars. Moreover, overexpression of SlHSP90.2 gene in transgenic tomato plants showed significant increase in root biomass and architecture, as evident from the analysis of fresh and dry weights of root and shoot samples, primary root length and length and number of lateral roots. The transgenic lines are also more tolerant to salinity and drought stresses. The results of the present study suggest that genetic manipulation of HSP90.2 homologs in other crops can offer promising leads to develop plant with better root biomass and architecture and improved agronomics traits, like better water and mineral absorption, salinity and drought tolerance potential.

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