TY - JOUR
T1 - Strengthening microbial cell factories for efficient production of bioactive molecules
AU - Singh, Bharat
AU - Kumar, Ankit
AU - Saini, Adesh Kumar
AU - Saini, Reena Vohra
AU - Thakur, Rahul
AU - Mohammed, Shakeel A.
AU - Tuli, Hardeep Singh
AU - Gupta, Vijai Kumar
AU - Areeshi, Mohammed Y.
AU - Faidah, Hani
AU - Jalal, Naif A.
AU - Haque, Shafiul
N1 - Publisher Copyright:
© 2023 Informa UK Limited, trading as Taylor & Francis Group.
PY - 2023
Y1 - 2023
N2 - High demand of bioactive molecules (food additives, antibiotics, plant growth enhancers, cosmetics, pigments and other commercial products) is the prime need for the betterment of human life where the applicability of the synthetic chemical product is on the saturation due to associated toxicity and ornamentations. It has been noticed that the discovery and productivity of such molecules in natural scenarios are limited due to low cellular yields as well as less optimized conventional methods. In this respect, microbial cell factories timely fulfilling the requirement of synthesizing bioactive molecules by improving production yield and screening more promising structural homologues of the native molecule. Where the robustness of the microbial host can be potentially achieved by taking advantage of cell engineering approaches such as tuning functional and adjustable factors, metabolic balancing, adapting cellular transcription machinery, applying high throughput OMICs tools, stability of genotype/phenotype, organelle optimizations, genome editing (CRISPER/Cas mediated system) and also by developing accurate model systems via machine-learning tools. In this article, we provide an overview from traditional to recent trends and the application of newly developed technologies, for strengthening the systemic approaches and providing future directions for enhancing the robustness of microbial cell factories to speed up the production of biomolecules for commercial purposes.
AB - High demand of bioactive molecules (food additives, antibiotics, plant growth enhancers, cosmetics, pigments and other commercial products) is the prime need for the betterment of human life where the applicability of the synthetic chemical product is on the saturation due to associated toxicity and ornamentations. It has been noticed that the discovery and productivity of such molecules in natural scenarios are limited due to low cellular yields as well as less optimized conventional methods. In this respect, microbial cell factories timely fulfilling the requirement of synthesizing bioactive molecules by improving production yield and screening more promising structural homologues of the native molecule. Where the robustness of the microbial host can be potentially achieved by taking advantage of cell engineering approaches such as tuning functional and adjustable factors, metabolic balancing, adapting cellular transcription machinery, applying high throughput OMICs tools, stability of genotype/phenotype, organelle optimizations, genome editing (CRISPER/Cas mediated system) and also by developing accurate model systems via machine-learning tools. In this article, we provide an overview from traditional to recent trends and the application of newly developed technologies, for strengthening the systemic approaches and providing future directions for enhancing the robustness of microbial cell factories to speed up the production of biomolecules for commercial purposes.
KW - Biotechnology
KW - System biology
KW - high throughput
KW - metabolite
KW - microbes
UR - https://www.scopus.com/pages/publications/85148627401
U2 - 10.1080/02648725.2023.2177039
DO - 10.1080/02648725.2023.2177039
M3 - Artículo de revisión
C2 - 36809927
AN - SCOPUS:85148627401
SN - 0264-8725
VL - 39
SP - 1345
EP - 1378
JO - Biotechnology and Genetic Engineering Reviews
JF - Biotechnology and Genetic Engineering Reviews
IS - 2
ER -