Irbe Ilze, Filipova Inese, Skute Marite, Zajakina Anna, Spunde Karina, Juhna Talis
Latvian State Institute of Wood Chemistry, Dzerbenes 27, LV-1006 Riga, Latvia.
Latvian Biomedical Research and Study Centre, Ratsupites 1 k. 1, LV-1067 Riga, Latvia.
Polymers (Basel). 2021 Mar 30;13(7):1086. doi: 10.3390/polym13071086.
In this study unique blended biopolymer mycocel from naturally derived biomass was developed. Softwood Kraft (KF) or hemp (HF) cellulose fibers were mixed with fungal fibers (FF) in different ratios and the obtained materials were characterized regarding microstructure, air permeability, mechanical properties, and virus filtration efficiency. The fibers from screened Basidiomycota fungi (Ga), (Ff), (Ab), and (Tv) were applicable for blending with cellulose fibers. Fungi with trimitic hyphal system (Ga, Ff) in combinations with KF formed a microporous membrane with increased air permeability (>8820 mL/min) and limited mechanical strength (tensile index 9-14 Nm/g). HF combination with trimitic fungal hyphae formed a dense fibrillary net with low air permeability (77-115 mL/min) and higher strength 31-36 Nm/g. The hyphal bundles of monomitic fibers of Tv mycelium and Ab stipes made a tight structure with KF with increased strength (26-43 Nm/g) and limited air permeability (14-1630 mL/min). The blends KF FF (Ga) and KF FF (Tv) revealed relatively high virus filtration capacity: the log virus titer reduction values (LRV) corresponded to 4.54 LRV and 2.12 LRV, respectively. Mycocel biopolymers are biodegradable and have potential to be used in water microfiltration, food packaging, and virus filtration membranes.
在本研究中,开发了一种由天然生物质制成的独特混合生物聚合物——真菌丝素。将针叶木硫酸盐浆(KF)或麻纤维(HF)纤维素纤维与真菌纤维(FF)按不同比例混合,并对所得材料的微观结构、透气性、机械性能和病毒过滤效率进行了表征。筛选出的担子菌纲真菌(Ga)、(Ff)、(Ab)和(Tv)的纤维适用于与纤维素纤维混合。具有三系菌丝系统的真菌(Ga、Ff)与KF组合形成了一种微孔膜,其透气性增加(>8820 mL/min),机械强度有限(拉伸指数9 - 14 Nm/g)。HF与三系真菌菌丝组合形成了一种致密的纤维网,透气性低(77 - 115 mL/min),强度较高(31 - 36 Nm/g)。Tv菌丝体和Ab菌柄的单系纤维的菌丝束与KF形成了紧密结构,强度增加(26 - 43 Nm/g),透气性有限(14 - 1630 mL/min)。KF - FF(Ga)和KF - FF(Tv)混合物显示出相对较高的病毒过滤能力:病毒滴度对数降低值(LRV)分别对应4.54 LRV和2.12 LRV。真菌丝素生物聚合物可生物降解,有潜力用于水微滤、食品包装和病毒过滤膜。