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Biology subjects

Valkonen, M.

Publications and source records attributed to Valkonen, M..

3 recordsLinked to original sources

Protease suppression by native I9 inhibitor improves recombinant protein production in Trichoderma reesei

Microbes are powerful cell factories for making molecules that are difficult or impossible to produce by other means. Filamentous fungi such as Trichoderma reesei are superior hosts for recombinant protein production, yet secreted proteases often degrade target proteins, reducing yields and limiting process robustness. Preventing proteolysis without relying on expensive commercial inhibitors or compromising strain fitness has been a longstanding challenge in fungal biotechnology, particularly for scaling up production to industrially relevant levels. Here, we report the identification of a native inhibitory protein from T. reesei, TrI9, and show that directing its secretion into the culture medium markedly reduces extracellular protease activity and enables production of the highly protease-sensitive spider silk-like protein CBM-AQ12-CBM, which could be used in high-performance biomaterials. Computational and in vitro analyses provide mechanistic insight, showing that TrI9 functions as a multi-target inhibitor of subtilisin-like proteases (SLPs), including SLP2, a protease that cannot be eliminated by gene deletion due to its crucial role in normal growth and development. This TrI9-based strategy for protease mitigation presents a novel approach for strain improvement, protecting a wide range of protease-labile products beyond silk proteins during large-scale fermentation. Protecting sensitive proteins without added inhibitors offers a cost-effective alternative for scaling up protein production across multiple applications, from protein-based materials manufacturing to pharmaceuticals, as well as enzyme and food applications. SignificanceThe discovery and characterization of an independently encoded I9 inhibitor (TrI9) in the filamentous fungus Trichoderma reesei reveals a new layer of biological regulation of subtilisin-like protease activity in fungi. We show that overexpressing and secreting TrI9 into the culture supernatant can suppress extracellular proteolysis, including activity from the essential SLP2 protease thereby overcoming a major barrier to production of protease-sensitive recombinant proteins without compromising strain fitness. For industrial biomanufacturing, this translates into higher effective titers, more consistent product integrity and reduced reliance on costly commercial protease inhibitors, hence, improving process robustness and economics. As a broadly applicable strain-and-process strategy, TrI9-enabled protease control strengthens T. reesei as a scalable platform for precision fermentation of diverse, otherwise hard-to-produce proteins.

bioengineering↗

Hypoxia and Associated Acidosis Generate Cell-Type Specific Myeloid Responses in Glioblastoma

Hypoxia is a defining feature of glioblastoma (GBM), yet how it cooperates with hypoxia-associated acidosis to shape microglia and infiltrating monocyte-derived macrophages (MDM) remains poorly understood. We integrated cyclic immunohistochemistry, single-cell RNA sequencing, spatial transcriptomics, in vitro cell cultures, and DNA methylation profiling to outline hypoxia-driven responses in up to 136 GBMs. These hypoxic niches were selectively enriched for MDMs that activated carbonic anhydrase (CA) mediated pH buffering and other metabolic adaptation programs, enabling survival in acidic hypoxia, increasingly interacted with cancer cells, and show polarization toward immunosuppressive myeloid-derived suppressor cell (MDSC)-like states. In contrast, microglia were depleted in hypoxic areas, lacked compensatory CA isoenzymes, and developed TNF-linked stress responses and loss of homeostatic identity in acidic hypoxia. These findings identify metabolic adaptation to hypoxia-associated microenvironmental stress as a key determinant of GBM immune architecture, driving myeloid cell fates, spatial TME reorganization and the emergence of immunosuppressive tumor ecosystems.

cancer biology↗

Adipose tissue-derived fibroblasts engage in immune-stromal crosstalk during obesity-aggravated atherosclerosis in mice

Atherosclerosis involves changes in the vascular wall and surrounding perivascular adipose tissue, yet the cellular contributors to disease progression remain incompletely understood. Obesity exacerbates atherogenesis, but the cell types driving this aggravation are unclear. We aimed to define the key cell populations across tissues in a highly atherogenic mouse model under obese and normal-weight conditions and to identify obesity-associated cellular changes. We employed 5 single-cell RNA sequencing combined with antibody staining in Ldlr-/-Apob100/100 male mice fed either a high-fat or control diet. Aorta, perivascular and epididymal adipose tissues, and spleen were analyzed, with CD45 enrichment of aortic samples and CITE-seq using a 138-antibody panel. Key findings were validated in mice by immunohistochemistry and multiplexed immunofluorescence and explored in human aorta and carotid arteries using spatial transcriptomics. Analysis of [~]46,000 cells enabled characterization of cell states, gene enrichment, regulon activity, and inferred interactions. Adipose-derived fibroblast subsets displayed immune-associated transcriptional programs in obesity. Pi16 progenitor fibroblasts were reduced alongside marked PVAT remodeling, and the top mouse differentially expressed genes exhibited clear spatial patterning in human arteries.

genomics↗