Trajectory in biological metal-organic frameworks: Biosensing and sustainable strategies-perspectives and challenges

Int J Biol Macromol. 2023 Dec 31;253(Pt 6):127120. doi: 10.1016/j.ijbiomac.2023.127120. Epub 2023 Oct 10.

Abstract

The ligand attribute of biomolecules to form coordination bonds with metal ions led to the discovery of a novel class of materials called biomolecule-associated metal-organic frameworks (Bio-MOFs). These biomolecules coordinate in multiple ways and provide versatile applications. Far-spread bio-ligands include nucleobases, amino acids, peptides, cyclodextrins, saccharides, porphyrins/metalloporphyrin, proteins, etc. Low-toxicity, self-assembly, stability, designable and selectable porous size, the existence of rigid and flexible forms, bio-compatibility, and synergistic interactions between metal ions have led Bio-MOFs to be commercialized in industries such as sensors, food, pharma, and eco-sensing. The rapid growth and commercialization are stunted by absolute bio-compatibility issues, bulk morphology that makes it rigid to alter shape/porosity, longer reaction times, and inadequate research. This review elucidates the structural vitality, biocompatibility issues, and vital sensing applications, including challenges for incorporating bio-ligands into MOF. Critical innovations in Bio-MOFs' applicative spectrum, including sustainable food packaging, biosensing, insulin and phosphoprotein detection, gas sensing, CO2 capture, pesticide carriers, toxicant adsorptions, etc., have been elucidated. Emphasis is placed on biosensing and biomedical applications with biomimetic catalysis and sensitive sensor designing.

Keywords: Bio-mimetic catalysis; CO(2) sensing; Chemo-bio-Sensors; Chiral separation; Electrochemical sensors.

Publication types

  • Review

MeSH terms

  • Amino Acids
  • Ions
  • Metal-Organic Frameworks* / chemistry
  • Metalloporphyrins* / chemistry
  • Metals / chemistry

Substances

  • Metal-Organic Frameworks
  • Metals
  • Metalloporphyrins
  • Amino Acids
  • Ions