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Unveiling a Microexon Switch: Novel Regulation of the Activities of Sugar Assimilation and Plant-Cell-Wall-Degrading Xylanases and Cellulases by Xlr2 in Trichoderma virens.
Castañeda-Casasola, Cynthia Coccet; Nieto-Jacobo, María Fernanda; Soares, Amanda; Padilla-Padilla, Emir Alejandro; Anducho-Reyes, Miguel Angel; Brown, Chris; Soth, Sereyboth; Esquivel-Naranjo, Edgardo Ulises; Hampton, John; Mendoza-Mendoza, Artemio.
Affiliation
  • Castañeda-Casasola CC; Faculty of Agriculture and Life Sciences, Lincoln University, Lincoln 7647, New Zealand.
  • Nieto-Jacobo MF; Laboratorio de AgroBiotecnología, Universidad Politécnica de Pachuca, Carretera Pachuca-Cd. Sahagún, km 20, ExHacienda de Santa Bárbara, Zempoala 43830, Mexico.
  • Soares A; Servicio Nacional de Sanidad, Inocuidad y Calidad Agroalimentaria, Centro Nacional de Referencia Fitosanitaria, Tecamac 55740, Mexico.
  • Padilla-Padilla EA; Plant & Food Research, Lincoln, 74 Gerald Street, Lincoln 7608, New Zealand.
  • Anducho-Reyes MA; Faculty of Agriculture and Life Sciences, Lincoln University, Lincoln 7647, New Zealand.
  • Brown C; Faculty of Agriculture and Life Sciences, Lincoln University, Lincoln 7647, New Zealand.
  • Soth S; Department of Biochemistry, School of Biomedical Sciences, University of Otago, Dunedin 9054, New Zealand.
  • Esquivel-Naranjo EU; Centro de Ciencias Genómicas, Universidad Nacional Autónoma de México, Cuernavaca 04510, Mexico.
  • Hampton J; Laboratorio de AgroBiotecnología, Universidad Politécnica de Pachuca, Carretera Pachuca-Cd. Sahagún, km 20, ExHacienda de Santa Bárbara, Zempoala 43830, Mexico.
  • Mendoza-Mendoza A; Department of Biochemistry, School of Biomedical Sciences, University of Otago, Dunedin 9054, New Zealand.
Int J Mol Sci ; 25(10)2024 May 09.
Article in En | MEDLINE | ID: mdl-38791210
ABSTRACT
Functional microexons have not previously been described in filamentous fungi. Here, we describe a novel mechanism of transcriptional regulation in Trichoderma requiring the inclusion of a microexon from the Xlr2 gene. In low-glucose environments, a long mRNA including the microexon encodes a protein with a GAL4-like DNA-binding domain (Xlr2-α), whereas in high-glucose environments, a short mRNA that is produced encodes a protein lacking this DNA-binding domain (Xlr2-ß). Interestingly, the protein isoforms differ in their impact on cellulase and xylanase activity. Deleting the Xlr2 gene reduced both xylanase and cellulase activity and growth on different carbon sources, such as carboxymethylcellulose, xylan, glucose, and arabinose. The overexpression of either Xlr2-α or Xlr2-ß in T. virens showed that the short isoform (Xlr2-ß) caused higher xylanase activity than the wild types or the long isoform (Xlr2-α). Conversely, cellulase activity did not increase when overexpressing Xlr2-ß but was increased with the overexpression of Xlr2-α. This is the first report of a novel transcriptional regulation mechanism of plant-cell-wall-degrading enzyme activity in T. virens. This involves the differential expression of a microexon from a gene encoding a transcriptional regulator.
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Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Trichoderma / Fungal Proteins / Cell Wall / Cellulases / Endo-1,4-beta Xylanases Language: En Journal: Int J Mol Sci Year: 2024 Document type: Article Affiliation country: Nueva Zelanda Country of publication: Suiza

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Trichoderma / Fungal Proteins / Cell Wall / Cellulases / Endo-1,4-beta Xylanases Language: En Journal: Int J Mol Sci Year: 2024 Document type: Article Affiliation country: Nueva Zelanda Country of publication: Suiza