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자료유형
학술저널
저자정보
Barzee Tyler J. (Department of Biosystems and Agricultural Engineering University of Kentucky Lexington KY 40546 USADepartment of Biological and Agricultural Engineering University of California Davis Davis CA 95616 U) El-Mashad Hamed M. (Department of Biological and Agricultural Engineering University of California Davis Davis CA 95616 USAAgricultural Engineering Department Mansoura University El Mansoura Egypt) Burch Andrew R. (Department of Chemistry University of California Davis CA 95616 USABiochemistry Molecular Cellular and Developmental Biology Graduate Group University of California Davis CA 95616 USA) Franz Annaliese K. (Department of Chemistry University of California Davis CA 95616 USABiochemistry Molecular Cellular and Developmental Biology Graduate Group University of California Davis CA 95616 USA) Zhang Ruihong (Department of Biological and Agricultural Engineering University of California Davis Davis CA 95616 USA)
저널정보
한국미생물생명공학회 Journal of Microbiology and Biotechnology Journal of Microbiology and Biotechnology 제33권 제2호
발행연도
2023.2
수록면
251 - 259 (9page)
DOI
10.4014/jmb.2209.09042

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Immobilizing microalgae cells in a hyphal matrix can simplify harvest while producing novel mycoalgae products with potential food, feed, biomaterial, and renewable energy applications; however, limited quantitative information to describe the process and its applicability under various conditions leads to difficulties in comparing across studies and scaling-up. Here, we demonstrate the immobilization of both active and heat-deactivated marine diatom Phaeodactylum tricornutum (UTEX 466) using different loadings of fungal pellets (Aspergillus sp.) and model the process through kinetics and equilibrium models. Active P. tricornutum cells were not required for the fungal-assisted immobilization process and the fungal isolate was able to immobilize more than its original mass of microalgae. The Freundlich isotherm model adequately described the equilibrium immobilization characteristics and indicated increased normalized algae immobilization (g algae removed/g fungi loaded) under low fungal pellet loadings. The kinetics of algae immobilization by the fungal pellets were found to be adequately modeled using both a pseudo-second order model and a model previously developed for fungal-assisted algae immobilization. These results provide new insights into the behavior and potential applications of fungal-assisted algae immobilization.

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