Author(s):
Aimen Chaudhry*, Sadia Sajjad, Qurat Ul Ain, Ramisha Kamran, Iqra Chaudhary
Corresponding Author: aimenchaudhary3@gmail.com
Abstract:
Aspergillus niger is a widely distributed filamentous fungus known for its significant role in industrial biotechnology and its potential as an opportunistic pathogen. This study investigated the production, characterization, and industrial applications of A. niger-derived lipase while assessing its pathogenic risks and biosafety concerns. Lipase production was optimized using solid-state fermentation (SSF) and submerged fermentation (SmF) techniques, with results indicating maximum enzyme activity at pH 7.5 and 40°C. The enzyme demonstrated strong substrate specificity, particularly for long-chain triglycerides, making it highly suitable for detergents, pharmaceuticals, and food industries. Comparative analysis with bacterial and yeast-derived lipases revealed that A. niger lipase offers high substrate specificity and cost-effective production, but has moderate thermostability compared to bacterial lipases. The study also reviewed clinical cases of A. niger-related infections, particularly otomycosis, onychomycosis, and pulmonary aspergillosis, highlighting its impact on immunocompromised individuals. Antifungal resistance patterns and biosafety concerns, particularly mycotoxin contamination, were assessed, emphasizing the need for regulatory measures in large-scale enzyme production. Despite its pathogenic potential, GRAS-certified A. niger strains remain a reliable source of industrial enzymes, provided that strict quality control and safety protocols are followed. This research contributes to the ongoing biotechnological advancements in enzyme production while addressing the clinical and regulatory challenges associated with A. niger. Future studies should focus on genetic modifications, enzyme immobilization techniques, and sustainable fermentation strategies to enhance the stability, efficiency, and biosafety of A. niger-derived lipases.
Keywords:
Aspergillus niger, Lipase, Industrial Enzymes, Fermentation, Enzyme Optimization, Mycotoxin Contamination, Biosafety, Pathogenicity, Antifungal Resistance, Biotechnology
Acceptance Date:
March 28, 2025
Download the full article as a PDF.
Download PDFHow to Cite?
Abstract Views: 557