Cargando…

Insights on life cycle and cell identity regulatory circuits for unlocking genetic improvement in Zygosaccharomyces and Kluyveromyces yeasts

Evolution has provided a vast diversity of yeasts that play fundamental roles in nature and society. This diversity is not limited to genotypically homogeneous species with natural interspecies hybrids and allodiploids that blur species boundaries frequently isolated. Thus, life cycle and the nature...

Descripción completa

Detalles Bibliográficos
Autores principales: Solieri, Lisa, Cassanelli, Stefano, Huff, Franziska, Barroso, Liliane, Branduardi, Paola, Louis, Edward J, Morrissey, John P
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8673824/
https://www.ncbi.nlm.nih.gov/pubmed/34791177
http://dx.doi.org/10.1093/femsyr/foab058
_version_ 1784615523399499776
author Solieri, Lisa
Cassanelli, Stefano
Huff, Franziska
Barroso, Liliane
Branduardi, Paola
Louis, Edward J
Morrissey, John P
author_facet Solieri, Lisa
Cassanelli, Stefano
Huff, Franziska
Barroso, Liliane
Branduardi, Paola
Louis, Edward J
Morrissey, John P
author_sort Solieri, Lisa
collection PubMed
description Evolution has provided a vast diversity of yeasts that play fundamental roles in nature and society. This diversity is not limited to genotypically homogeneous species with natural interspecies hybrids and allodiploids that blur species boundaries frequently isolated. Thus, life cycle and the nature of breeding systems have profound effects on genome variation, shaping heterozygosity, genotype diversity and ploidy level. The apparent enrichment of hybrids in industry-related environments suggests that hybridization provides an adaptive route against stressors and creates interest in developing new hybrids for biotechnological uses. For example, in the Saccharomyces genus where regulatory circuits controlling cell identity, mating competence and meiosis commitment have been extensively studied, this body of knowledge is being used to combine interesting traits into synthetic F1 hybrids, to bypass F1 hybrid sterility and to dissect complex phenotypes by bulk segregant analysis. Although these aspects are less known in other industrially promising yeasts, advances in whole-genome sequencing and analysis are changing this and new insights are being gained, especially in the food-associated genera Zygosaccharomyces and Kluyveromyces. We discuss this new knowledge and highlight how deciphering cell identity circuits in these lineages will contribute significantly to identify the genetic determinants underpinning complex phenotypes and open new avenues for breeding programmes.
format Online
Article
Text
id pubmed-8673824
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher Oxford University Press
record_format MEDLINE/PubMed
spelling pubmed-86738242021-12-16 Insights on life cycle and cell identity regulatory circuits for unlocking genetic improvement in Zygosaccharomyces and Kluyveromyces yeasts Solieri, Lisa Cassanelli, Stefano Huff, Franziska Barroso, Liliane Branduardi, Paola Louis, Edward J Morrissey, John P FEMS Yeast Res Minireview Evolution has provided a vast diversity of yeasts that play fundamental roles in nature and society. This diversity is not limited to genotypically homogeneous species with natural interspecies hybrids and allodiploids that blur species boundaries frequently isolated. Thus, life cycle and the nature of breeding systems have profound effects on genome variation, shaping heterozygosity, genotype diversity and ploidy level. The apparent enrichment of hybrids in industry-related environments suggests that hybridization provides an adaptive route against stressors and creates interest in developing new hybrids for biotechnological uses. For example, in the Saccharomyces genus where regulatory circuits controlling cell identity, mating competence and meiosis commitment have been extensively studied, this body of knowledge is being used to combine interesting traits into synthetic F1 hybrids, to bypass F1 hybrid sterility and to dissect complex phenotypes by bulk segregant analysis. Although these aspects are less known in other industrially promising yeasts, advances in whole-genome sequencing and analysis are changing this and new insights are being gained, especially in the food-associated genera Zygosaccharomyces and Kluyveromyces. We discuss this new knowledge and highlight how deciphering cell identity circuits in these lineages will contribute significantly to identify the genetic determinants underpinning complex phenotypes and open new avenues for breeding programmes. Oxford University Press 2021-11-17 /pmc/articles/PMC8673824/ /pubmed/34791177 http://dx.doi.org/10.1093/femsyr/foab058 Text en © The Author(s) 2021. Published by Oxford University Press on behalf of FEMS. https://creativecommons.org/licenses/by-nc/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (https://creativecommons.org/licenses/by-nc/4.0/), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the original work is properly cited. For commercial re-use, please contact journals.permissions@oup.com
spellingShingle Minireview
Solieri, Lisa
Cassanelli, Stefano
Huff, Franziska
Barroso, Liliane
Branduardi, Paola
Louis, Edward J
Morrissey, John P
Insights on life cycle and cell identity regulatory circuits for unlocking genetic improvement in Zygosaccharomyces and Kluyveromyces yeasts
title Insights on life cycle and cell identity regulatory circuits for unlocking genetic improvement in Zygosaccharomyces and Kluyveromyces yeasts
title_full Insights on life cycle and cell identity regulatory circuits for unlocking genetic improvement in Zygosaccharomyces and Kluyveromyces yeasts
title_fullStr Insights on life cycle and cell identity regulatory circuits for unlocking genetic improvement in Zygosaccharomyces and Kluyveromyces yeasts
title_full_unstemmed Insights on life cycle and cell identity regulatory circuits for unlocking genetic improvement in Zygosaccharomyces and Kluyveromyces yeasts
title_short Insights on life cycle and cell identity regulatory circuits for unlocking genetic improvement in Zygosaccharomyces and Kluyveromyces yeasts
title_sort insights on life cycle and cell identity regulatory circuits for unlocking genetic improvement in zygosaccharomyces and kluyveromyces yeasts
topic Minireview
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8673824/
https://www.ncbi.nlm.nih.gov/pubmed/34791177
http://dx.doi.org/10.1093/femsyr/foab058
work_keys_str_mv AT solierilisa insightsonlifecycleandcellidentityregulatorycircuitsforunlockinggeneticimprovementinzygosaccharomycesandkluyveromycesyeasts
AT cassanellistefano insightsonlifecycleandcellidentityregulatorycircuitsforunlockinggeneticimprovementinzygosaccharomycesandkluyveromycesyeasts
AT hufffranziska insightsonlifecycleandcellidentityregulatorycircuitsforunlockinggeneticimprovementinzygosaccharomycesandkluyveromycesyeasts
AT barrosoliliane insightsonlifecycleandcellidentityregulatorycircuitsforunlockinggeneticimprovementinzygosaccharomycesandkluyveromycesyeasts
AT branduardipaola insightsonlifecycleandcellidentityregulatorycircuitsforunlockinggeneticimprovementinzygosaccharomycesandkluyveromycesyeasts
AT louisedwardj insightsonlifecycleandcellidentityregulatorycircuitsforunlockinggeneticimprovementinzygosaccharomycesandkluyveromycesyeasts
AT morrisseyjohnp insightsonlifecycleandcellidentityregulatorycircuitsforunlockinggeneticimprovementinzygosaccharomycesandkluyveromycesyeasts