Plant Cell Wall Deconstruction by Ascomycete Fungi

Author:

Glass N. Louise1,Schmoll Monika2,Cate Jamie H.D.34,Coradetti Samuel1

Affiliation:

1. Plant and Microbial Biology Department,

2. Austrian Institute of Technology GmbH (AIT), Health and Environment, Bioresources, 3430 Tulln, Austria

3. Molecular and Cellular Biology Department, and

4. Chemistry Department, University of California, Berkeley, California 94720;

Abstract

Plant biomass degradation by fungi requires a diverse set of secreted enzymes and significantly contributes to the global carbon cycle. Recent advances in genomic and systems-level studies have begun to reveal how filamentous ascomycete species exploit carbon sources in different habitats. These studies have laid the groundwork for unraveling new enzymatic strategies for deconstructing the plant cell wall, including the discovery of polysaccharide monooxygenases that enhance the activity of cellulases. The identification of genes encoding proteins lacking functional annotation, but that are coregulated with cellulolytic genes, suggests functions associated with plant biomass degradation remain to be elucidated. Recent research shows that signaling cascades mediating cellulolytic responses often act in a light-dependent manner and show crosstalk with other metabolic pathways. In this review, we cover plant biomass degradation, from sensing, to transmission and modulation of signals, to activation of transcription factors and gene induction, to enzyme complement and function.

Publisher

Annual Reviews

Subject

Microbiology

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