Growth Propagation of Liquid Spawn on Non-Woven Hemp Mats to Inform Digital Biofabrication of Mycelium-Based Composites.

IF 3.9 3区 医学 Q1 ENGINEERING, MULTIDISCIPLINARY Biomimetics Pub Date : 2025-01-08 DOI:10.3390/biomimetics10010033
Andreas Biront, Mart Sillen, Patrick Van Dijck, Jan Wurm
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Abstract

Mycelium-based composites (MBCs) are highly valued for their ability to transform low-value organic materials into sustainable building materials, offering significant potential for decarbonizing the construction sector. The properties of MBCs are influenced by factors such as the mycelium species, substrate materials, fabrication growth parameters, and post-processing. Traditional fabrication methods involve combining grain spawn with loose substrates in a mold to achieve specific single functional properties, such as strength, acoustic absorption, or thermal insulation. However, recent advancements have focused on digital biofabrication to optimize MBC properties and expand their application scope. Despite these developments, existing research predominantly explores the use of grain spawn inoculation, with little focus on liquid spawn. Liquid spawn, however, holds significant potential, particularly in digital biofabrication, due to its ease of deposition and greater precision compared with grains. This paper, part of a digital biofabrication framework, investigates the growth kinetics of Ganoderma lucidum and Pleurotus ostreatus on hemp non-woven mats, offering flexibility and mold-free fabrication using liquid inoculation. By integrating mycelium growth kinetics into digital biofabricated materials, researchers can develop more sustainable, efficient, and specialized solutions using fewer resources, enhancing the adaptability and functionality of MBCs. The experiment involved pre-cultivating P. ostreatus and G. lucidum in yeast peptone dextrose (YPD) and complete yeast media (CYM) under static (ST) and shaking (SH) conditions. Four dilutions (1:10, 1:2, 1:1, and 2:1) were prepared and analyzed through imagery to assess growth kinetics. Results showed that lower dilutions promoted faster growth with full coverage, while higher dilutions offered slower growth with partial coverage. SH conditions resulted in slightly higher coverage and faster growth. To optimize the control of material properties within the digital biofabrication system, it is recommended to use CYM ST for P. ostreatus and YPD SH for G. lucidum, as their growth curves show clear separation between dilutions, reflecting distinct growth efficiencies and speeds that can be selected for desired outcomes.

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液体菌种在无纺布麻垫上的生长繁殖,为菌丝基复合材料的数字化生物制造提供信息。
菌丝体基复合材料(MBCs)因其将低价值有机材料转化为可持续建筑材料的能力而受到高度重视,为建筑行业脱碳提供了巨大的潜力。菌丝体种类、基质材料、制备、生长参数和后处理等因素对复合材料的性能都有影响。传统的制造方法包括将颗粒卵与松散的基材结合在模具中,以实现特定的单一功能特性,如强度、吸声或隔热。然而,最近的进展集中在数字生物制造上,以优化MBC的性能并扩大其应用范围。尽管有这些进展,现有的研究主要是探索谷物菌种接种的使用,很少关注液体菌种。然而,液体菌种具有巨大的潜力,特别是在数字生物制造方面,因为它易于沉积,与颗粒相比精度更高。本文作为数字生物制造框架的一部分,研究了灵芝和平菇在大麻无纺布垫上的生长动力学,使用液体接种提供灵活性和无霉菌制造。通过将菌丝体生长动力学整合到数字生物制造材料中,研究人员可以利用更少的资源开发出更可持续、更高效和更专业的解决方案,增强菌丝体的适应性和功能。在酵母蛋白胨葡萄糖(YPD)和完全酵母培养基(CYM)中进行静态(ST)和摇动(SH)条件下的预培养。四种稀释溶液(1:10,1:2,1:1和2:1)制备并通过成像分析以评估生长动力学。结果表明,低稀释度对全覆盖的生长有促进作用,而高稀释度对部分覆盖的生长有促进作用。SH条件导致了略高的覆盖率和更快的增长。为了优化数字生物制造系统中材料性能的控制,建议使用CYM ST用于P. ostreatus,使用YPD SH用于G. lucidum,因为它们的生长曲线在稀释度之间有明显的分离,反映了不同的生长效率和速度,可以选择所需的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Biomimetics
Biomimetics Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
3.50
自引率
11.10%
发文量
189
审稿时长
11 weeks
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