Literature DB >> 23897542

Acidic proteases from Monterey sardine (Sardinops sagax caerulea) immobilized on shrimp waste chitin and chitosan supports: searching for a by-product catalytic system.

Jesus Aaron Salazar-Leyva1, Jaime Lizardi-Mendoza, Juan Carlos Ramirez-Suarez, Elisa Miriam Valenzuela-Soto, Josafat Marina Ezquerra-Brauer, Francisco Javier Castillo-Yañez, Ramon Pacheco-Aguilar.   

Abstract

Solid wastes generated from the seafood industry represent an important environmental pollutant; therefore, utilization of those wastes for the development of processing biochemical tools could be an attractive and clean solution for the seafood industry. This study reports the immobilization of semi-purified acidic proteases from Monterey sardine stomachs onto chitin and chitosan materials extracted from shrimp head waste. Several supports (chitosan beads, chitosan flakes, and partially deacetylated flakes) were activated either with genipin or Na-tripolyphosphate and evaluated as a mean to immobilize acidic proteases. The protein load varied within the 67-91% range on different supports. The immobilization systems based on chitosan beads achieved the highest protein loads but showed the lowest retained catalytic activities. The best catalytic behavior was obtained using partially deacetylated chitin flakes activated either with genipin or Na-tripolyphosphate. According to results, the immobilization matrix structure, as well as acetylation degree of chitin-chitosan used, has considerable influence on the catalytic behavior of immobilized proteases. Partially deacetylated chitin flakes represent a suitable option as support for enzyme immobilization because its preparation requires fewer steps than other supports. Two abundant seafood by-products were used to obtain a catalytic system with enough proteolytic activity to be considered for biotechnological applications in diverse fields.

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Year:  2013        PMID: 23897542     DOI: 10.1007/s12010-013-0407-8

Source DB:  PubMed          Journal:  Appl Biochem Biotechnol        ISSN: 0273-2289            Impact factor:   2.926


  1 in total

1.  Moving and unsinkable graphene sheets immobilized enzyme for microfluidic biocatalysis.

Authors:  An Gong; Chang-Tong Zhu; Yan Xu; Fang-Qin Wang; D'assise Kinfack Tsabing; Fu-An Wu; Jun Wang
Journal:  Sci Rep       Date:  2017-06-27       Impact factor: 4.379

  1 in total

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