Skip to content
Open access

Isolation, Screening and Characterization of Cellulolytic Fungi from Decaying Plant Materials for Sustainable Bioethanol Production

Jul 2026 · Annual Research & Review in Biology · Vol 41, pp. 128-137 · 0 citations

Abstract

The increasing generation of plant waste presents significant environmental and public health challenges while simultaneously offering an abundant renewable resource for biofuel production. Microbial cellulases play a pivotal role in the conversion of lignocellulosic biomass into fermentable sugars, making the isolation of efficient cellulolytic fungi essential for sustainable bioethanol production. This study investigated the occurrence, isolation, screening, and characterization of cellulolytic fungi from decaying plant debris with the aim of identifying promising cellulase-producing strains for bioethanol production. Decaying plant debris samples were collected from domestic sources, processed under aseptic conditions, and cultured using standard microbiological techniques. Distinct fungal isolates were purified and identified based on their morphological and cultural characteristics. Preliminary screening for cellulase production was carried out on carboxymethyl cellulose (CMC) agar using Congo red staining, followed by quantitative determination of cellulase activity using standard enzyme assays. The cellulolytic potential of the isolates was evaluated by measuring hydrolysis zones and enzyme activity under controlled laboratory conditions. Selected isolates exhibiting superior cellulolytic activity were further characterized for their suitability in lignocellulosic biomass degradation. The findings demonstrated considerable diversity among the isolated microorganisms, with several fungal species exhibiting significant cellulolytic capabilities. The best-performing isolates producing large hydrolysis zones and high cellulase activities were Phanerochaete concrescens and Fusarium solani, producing 12.5 and 2.6 µmol/min/mg respectively indicating their potential application in enzymatic saccharification of decaying plant material. These findings provide valuable insights into the utilization of locally available microbial resources for sustainable waste valorization and renewable energy generation.

Read PDF

Similar papers

Open access Sep 2026

ENZYMATIC POTENTIAL OF FUSARIUM SPECIES WITH EMPHASIS ON AMYLASE, CELLULASE, LIPASE AND PROTEASE PRODUCTION

Fusarium is a diverse genus of filamentous fungi comprising several economically important plant pathogens. The production of extracellular hydrolytic enzymes plays an important role in fungal nutrient acquisition, substrate degradation. The present study was to evaluate the enzymatic potential of different Fusarium sp...

Ajay S. Zinjade, Vishal M. Hiwale, Pallavi J. Gawai et al. · 0 citations
Open access Sep 2026

Screening and ARTP mutagenesis-based breeding of high-cellulase-producing strains

While lignocellulose is an abundant renewable resource, the discovery of microorganisms capable of degrading lignocellulose is important for its full utilization. In this study, 26 soil samples were collected from Jigongshan National Nature Reserve, Xinyang, China. The Congo red staining method was used to isolate stra...

Lai-You Wang, Jin-Tao Fang, Wei Chen et al. · 0 citations
Open access Sep 2026

ISOLATION AND PRIMARY SCREENING OF BACTERIA AS POTENTIAL BIOSURFACTANT PRODUCERS

To identify novel microorganisms with the potential to produce biosurfactants, bacterial isolates were recovered and subjected to primary screening from natural and anthropogenically contaminated sites in the Republic of Kazakhstan. A total of 15 environmental samples were collected, yielding 20 bacterial isolates, of...

A. Kanagat, A. Atakanova, A. Jumagaziyeva et al. · 0 citations
Open access Sep 2026

Fermentative production of xylitol from agro-industrial biomass using novel indigenous bacterial isolates

This study focuses on the microbial production of xylitol, a low-calorie sugar alcohol widely used in food and pharmaceutical applications, using bacterial strains isolated from agricultural soils. Unlike conventional chemical methods that rely on high temperature, pressure, and costly catalysts, this work explores a m...

C. Ajitha, S. Anandan, N. Vanitha et al. · 0 citations

We use cookies to run the site and, with your consent, for analytics and to show ads. See our Cookie Policy.