Aspergillus nidulans cell wall integrity kinase, MpkA, impacts cellular phenotypes that alter mycelial-material mechanical properties.

Q1 Agricultural and Biological Sciences Fungal Biology and Biotechnology Pub Date : 2024-12-18 DOI:10.1186/s40694-024-00191-4
Kelsey Gray, Harley Edwards, Alexander G Doan, Walker Huso, JungHun Lee, Wanwei Pan, Nelanne Bolima, Meredith E Morse, Sarah Yoda, Isha Gautam, Steven D Harris, Marc Zupan, Tuo Wang, Tagide deCarvalho, Mark R Marten
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Abstract

Mycelial materials are an emerging, natural material made from filamentous fungi that have the potential to replace unsustainable materials used in numerous commercial applications (e.g., packaging, textiles, construction). Efforts to change the mechanical properties of mycelial-materials have typically involved altering growth medium, processing approaches, or fungal species. Although these efforts have shown varying levels of success, all approaches have shown there is a strong correlation between phenotype (of both fungal mycelia and mycelial material's assembly) and resultant mechanical properties. We hypothesize that genetic means can be used to generate specific fungal phenotypes, leading to mycelial materials with specific mechanical properties. To begin to test this hypothesis, we used a mutant of the model filamentous fungus, Aspergillus nidulans, with a deletion in the gene encoding the last kinase in the cell wall integrity (CWI) signaling pathway, mpkA. We generated one set of mycelial materials from the ΔmpkA deletion mutant (A1404), and another from its isogenic parent (A1405; control). When subjected to tensile testing, and compared to material generated from the control, ΔmpkA material has similar elastic modulus, but significantly increased ultimate tensile strength, and strain at failure. When subjected to a fragmentation assay (i.e., resistance to shear-stress), the ΔmpkA material also had higher relative mechanical strength. To determine possible causes for this behavior, we carried out a comprehensive set of phenotype assessments focused on: three-dimensional structure, hyphal morphology, hyphal growth behaviors, and conidial development. We found, compared to the control, material generated from the ΔmpkA mutant manifests significantly less development, a modified cell wall composition, larger diameter hyphae, more total biomass, higher water capacity and more densely packed material, which all appear to impact the altered mechanical properties.

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中性曲霉细胞壁完整性激酶,MpkA,影响改变菌丝材料力学特性的细胞表型。
菌丝材料是一种由丝状真菌制成的新兴天然材料,有可能取代许多商业应用(如包装、纺织品、建筑)中使用的不可持续材料。改变菌丝材料机械特性的努力通常涉及改变生长介质、加工方法或真菌种类。尽管这些努力显示出不同程度的成功,但所有的方法都表明表型(真菌菌丝和菌丝材料的组装)与最终的机械性能之间存在很强的相关性。我们假设遗传手段可以用来产生特定的真菌表型,导致具有特定机械性能的菌丝材料。为了验证这一假设,我们使用了一种模型丝状真菌的突变体——细粒曲霉(Aspergillus nidulans),该突变体在细胞壁完整性(CWI)信号通路mpkA中编码最后一个激酶的基因缺失。我们从ΔmpkA缺失突变体(A1404)中生成了一组菌丝材料,另一组来自其等基因亲本(A1405;控制)。当进行拉伸试验时,与对照生成的材料相比,ΔmpkA材料具有相似的弹性模量,但显著增加了极限抗拉强度和破坏应变。当进行破碎试验(即抗剪切应力)时,ΔmpkA材料也具有较高的相对机械强度。为了确定这种行为的可能原因,我们进行了一套全面的表型评估,重点是:三维结构、菌丝形态、菌丝生长行为和分生孢子发育。我们发现,与对照相比,ΔmpkA突变体产生的材料发育明显减少,细胞壁成分改变,菌丝直径更大,总生物量更多,水容量更高,材料密度更大,这些都影响了机械性能的改变。
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来源期刊
Fungal Biology and Biotechnology
Fungal Biology and Biotechnology Agricultural and Biological Sciences-Ecology, Evolution, Behavior and Systematics
CiteScore
10.20
自引率
0.00%
发文量
17
审稿时长
9 weeks
期刊最新文献
Aspergillus nidulans cell wall integrity kinase, MpkA, impacts cellular phenotypes that alter mycelial-material mechanical properties. CRISPR-Cas9-mediated enhancement of Beauveria bassiana virulence with overproduction of oosporein. Quantification of fungal biomass in mycelium composites made from diverse biogenic side streams. Filamentous fungi as emerging cell factories for the production of aromatic compounds. Enhancement of antioxidant activity and total phenolic content of Fomitopsis pinicola mycelium extract.
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