Proteomic analysis reveals molecular changes following genetic engineering in Chlamydomonas reinhardtii.


Journal

BMC microbiology
ISSN: 1471-2180
Titre abrégé: BMC Microbiol
Pays: England
ID NLM: 100966981

Informations de publication

Date de publication:
08 Oct 2024
Historique:
received: 27 04 2024
accepted: 26 09 2024
medline: 9 10 2024
pubmed: 9 10 2024
entrez: 8 10 2024
Statut: epublish

Résumé

Chlamydomonas reinhardtii is gaining recognition as a promising expression system for the production of recombinant proteins. However, its performance as a cellular biofactory remains suboptimal, especially with respect to consistent expression of heterologous genes. Gene silencing mechanisms, position effect, and low nuclear transgene expression are major drawbacks for recombinant protein production in this model system. To unveil the molecular changes following transgene insertion, retention, and expression in this species, we genetically engineered C. reinhardtii wild type strain 137c (strain cc-125 mt+) to express the fluorescent protein mVenus and subsequently analysed its intracellular proteome. The obtained transgenic cell lines showed differences in abundance in more than 400 proteins, with multiple pathways altered post-transformation. Proteins involved in chromatin remodelling, translation initiation and elongation, and protein quality control and transport were found in lower abundance. On the other hand, ribosomal proteins showed higher abundance, a signal of ribosomal stress response. These results provide new insights into the modifications of C. reinhardtii proteome after transformation, highlighting possible pathways involved in gene silencing. Moreover, this study identifies multiple protein targets for future genetic engineering approaches to improve the prospective use of C. reinhardtii as cell biofactory for industrial applications.

Sections du résumé

BACKGROUND BACKGROUND
Chlamydomonas reinhardtii is gaining recognition as a promising expression system for the production of recombinant proteins. However, its performance as a cellular biofactory remains suboptimal, especially with respect to consistent expression of heterologous genes. Gene silencing mechanisms, position effect, and low nuclear transgene expression are major drawbacks for recombinant protein production in this model system. To unveil the molecular changes following transgene insertion, retention, and expression in this species, we genetically engineered C. reinhardtii wild type strain 137c (strain cc-125 mt+) to express the fluorescent protein mVenus and subsequently analysed its intracellular proteome.
RESULTS RESULTS
The obtained transgenic cell lines showed differences in abundance in more than 400 proteins, with multiple pathways altered post-transformation. Proteins involved in chromatin remodelling, translation initiation and elongation, and protein quality control and transport were found in lower abundance. On the other hand, ribosomal proteins showed higher abundance, a signal of ribosomal stress response.
CONCLUSIONS CONCLUSIONS
These results provide new insights into the modifications of C. reinhardtii proteome after transformation, highlighting possible pathways involved in gene silencing. Moreover, this study identifies multiple protein targets for future genetic engineering approaches to improve the prospective use of C. reinhardtii as cell biofactory for industrial applications.

Identifiants

pubmed: 39379820
doi: 10.1186/s12866-024-03554-4
pii: 10.1186/s12866-024-03554-4
doi:

Substances chimiques

Proteome 0
Recombinant Proteins 0

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

392

Informations de copyright

© 2024. The Author(s).

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Auteurs

Lorenzo Barolo (L)

University of Technology Sydney, Climate Change Cluster, Broadway Campus, Ultimo, Sydney, NSW, 2007, Australia. lorenzo.barolo@uniroma1.it.

Raffaela M Abbriano (RM)

University of Technology Sydney, Climate Change Cluster, Broadway Campus, Ultimo, Sydney, NSW, 2007, Australia.

Audrey S Commault (AS)

University of Technology Sydney, Climate Change Cluster, Broadway Campus, Ultimo, Sydney, NSW, 2007, Australia.

Matthew P Padula (MP)

School of Life Sciences and Proteomics Core Facility, Faculty of Science, University of Technology Sydney, Ultimo, Sydney, NSW, 2007, Australia.

Mathieu Pernice (M)

University of Technology Sydney, Climate Change Cluster, Broadway Campus, Ultimo, Sydney, NSW, 2007, Australia. Mathieu.Pernice@uts.edu.au.

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