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Plant Thaumatin-like Proteins: Function, Evolution and Biotechnological Applications

期刊

CURRENT PROTEIN & PEPTIDE SCIENCE
卷 21, 期 1, 页码 36-51

出版社

BENTHAM SCIENCE PUBL LTD
DOI: 10.2174/1389203720666190318164905

关键词

Higher plants; TLP; PR-5; osmotin-like; zeamatin; biotic stress; abiotic stress

资金

  1. Brazilian Coordination of Improvement of Higher Education Personnel (CAPES, Computational Biology Program)
  2. Brazilian Council of Scientific and Technological Development (CNPq)
  3. Fundacao de Amparo a Ciencia e Tecnologia do Estado de Pernambuco (FACEPE)

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Thaumatin-like proteins (TLPs) are a highly complex protein family associated with host defense and developmental processes in plants, animals, and fungi. They are highly diverse in angiosperms, for which they are classified as the PR-5 (Pathogenesis-Related-5) protein family. In plants, TLPs have a variety of properties associated with their structural diversity. They are mostly associated with responses to biotic stresses, in addition to some predicted activities under drought and osmotic stresses. The present review covers aspects related to the structure, evolution, gene expression, and biotechnological potential of TLPs. The efficiency of the discovery of new TLPs is below its potential, considering the availability of omics data. Furthermore, we present an exemplary bioinformatics annotation procedure that was applied to cowpea (Vigna unguiculata) transcriptome, including libraries of two tissues (root and leaf), and two stress types (biotic/abiotic) generated using different sequencing approaches. Even without using genomic sequences, the pipeline uncovered 56 TLP candidates in both tissues and stresses. Interestingly, abiotic stress (root dehydration) was associated with a high number of modulated TLP isoforms. The nomenclature used so far for TLPs was also evaluated, considering TLP structure and possible functions identified to date. It is clear that plant TLPs are promising candidates for breeding purposes and for plant transformation aiming a better performance under biotic and abiotic stresses. The development of new therapeutic drugs against human fungal pathogens also deserves attention. Despite that, applications derived from TLP molecules are still below their potential, as it is evident in our review.

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