Jul 2026· Biotechnology for Biofuels and Bioproducts· 0 citations
Medicine
TL;DR
These findings define the core oxidative machinery underlying biomass deconstruction in T. reesei, revealing the major cellulose-oxidative role of TrLPMO9A and the importance of a cooperative redox network for efficient lignocellulose depolymerization.
Abstract
Background
One of the most prominent mechanisms for plant cell wall deconstruction in nature, and widely employed in industry, relies on the coordinated action of hydrolytic and oxidative enzymes. However, how redox networks sustain synergistic biomass deconstruction remains incompletely understood, particularly in the industrial workhorse Trichoderma reesei. This fungus lacks a cellobiose dehydrogenase (CDH), a pivotal redox partner for lytic polysaccharide monooxygenases (LPMOs) in many fungal systems. Here, we investigated the oxidative machinery of T. reesei and the contribution of key redox-active enzymes to lignocellulose deconstruction.
Results
We demonstrate that the oxidative capacity of the T. reesei secretome is largely driven by a single enzyme, TrLPMO9A, the most abundant oxidoreductase in the secretome. Proteomic analyses also revealed a lower abundance of other redox-active enzymes, including TrLPMO9B and AA5 oxidase. Although deletion of TrLPMO9B and TrAA5 had a less pronounced impact on saccharification efficiency compared with TrLPMO9A, the secretome remodeling triggered by their deletion, along with the associated decrease in saccharification performance, indicates that these redox enzymes play distinct, non-redundant roles. They likely play a system-level role within a cooperative redox network that fuels oxidative cellulose deconstruction, potentially extending beyond direct catalysis to processes associated with redox balance or protein secretion. Finally, we challenged the CDH-lacking paradigm by heterologously expressing a CDH in T. reesei. In vivo reconstitution of this redox duet increased biomass saccharification by 13-19%, demonstrating a strong synergistic relationship between LPMOs and CDHs even in a native CDH-lacking host.
Conclusion
These findings define the core oxidative machinery underlying biomass deconstruction in T. reesei, revealing the major cellulose-oxidative role of TrLPMO9A and the importance of a cooperative redox network for efficient lignocellulose depolymerization. Moreover, successful reconstitution of CDH activity in a naturally CDH-deficient host establishes redox engineering as a promising strategy to enhance industrial biomass conversion.
Efficient saccharification of lignocellulose, the most abundant renewable carbon reservoir resource, is of great industrial importance. Trichoderma reesei is a premier cellulase producer, but its fermentation efficiency is often constrained by dual challenges: dissolved oxygen limitation and intrinsic oxidative stress. To address this, we engineered T. reesei to heterologously express a robust catalase gene (cat-3) from Neurospora crassa. The recombinant strain Tr-cNcat3 exhibited a 7.4-fold increase in extracellular catalase activity. Tr-cNcat3 showed an increase in total extracellular protein, resulting in markedly enhanced filter paper activity (FPA) and β-glucosidase activity compared to the control. Strikingly, this intervention specifically triggered a significantly higher expression of β-glucosidase, a known bottleneck in T. reesei’s cellulase system, particularly on bagasse and straw as the carbon source. Moreover, the ability of the supernatant to degrade cellulose substrates was improved. Our results reveal that overexpression of cat-3 in T. reesei could modify the cellulase cocktail by triggering a higher level of β-glucosidase. This study provides a novel and effective genetic engineering strategy to unlock the full industrial potential of T. reesei for cost-effective lignocellulosic biorefining.
Haowen Sun, Chang-Bin Tang, Yifan Chen et al.· Journal of Fungi· 0 citations
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