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SYNTHETIC POLYMER MATERIALS AND THEIR POTENTIAL APPLICATIONS IN TREATING BATTLEFIELD INJURIES

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Volume 2, Issue 2, Pp 6-9, 2024

DOI: 10.61784/wjbsv2n230

Author(s)

Sarkar Maan

Affiliation(s)

University of Central Florida, Orlando, FL 32816, USA.

Corresponding Author

Sarkar Maan

ABSTRACT

In modern warfare, combat trauma can easily cause skin defects or loss of function, destroying the barrier function of the skin to the human body and affecting the stability of the internal environment of the body. Currently, there are various types of wound coverings available, but they have their own advantages, disadvantages and indications due to different performances. As an emerging product, biosynthetic polymer materials have huge application potential. This article provides a review on the research progress of biosynthetic polymer materials.

KEYWORDS

Biosynthetic polymer materials; War trauma; Application; Progress

CITE THIS PAPER

Sarkar Maan. Synthetic polymer materials and their potential applications in treating battlefield injuries. World Journal of Biomedical Sciences. 2024, 2(2): 6-9. DOI: 10.61784/wjbsv2n230.

REFERENCES

[1] Wallen LL, Rohwedder WK. Poly-β-hydroxyalkanoate from activa-ted sludge. Environ Sci Technol, 1974, 8(6):576-579.

[2] Kunikoa M, Nakamura Y, Doi Y. New bacterial copolysters pro-duced in Alcaligenuseutrophus from organoic acid. Polym Commun, 1988, 29: 174-176.

[3] Huu Phong T, Van Thuoc D, Sudesh K. Biosynthesis of poly (3-hydroxybutyrate) and its copolymers by Yangia sp. ND199 from diferent carbon sources. Int J Biol Macromol, 2016, 84:361-366.

[4] Jendrossek D, Pfeiffer D. New insights in the formation of poly-hydroxyalkanoate granules (carbonosomes) and novel functions of poly(3-hydroxybutyrate). Environ Microbiol, 2014, 16 (8): 2357-2373.

[5] Gao X, Chen JC, Wu Q. Polyhydroxyalkanoates as a source of chemicals, polymers, and biofuels. Curr Opin Biotechnol, 2011, 22 (6): 768-774.

[6] Chen GQ, Patel M. Plastics derived from biological sources: pres-ent and future-a technical and an environmental review. Chem Rev, 2012, 112 (4): 2082-2099.

[7] Meng DC, Ma YM, Yao H. Engineering the diversity of poly-esters. Curr Opin Biotechnol, 2014, 29(1): 24-33.

[8] Zhou Q, Shi ZY, Meng DC. Production of 3-hydroxypropi-onate homopolymer and poly (3-hydroxypropionate-co-4-hydroxy-butyrate) copolymer by recombinant Escherichia coli. Metab Eng, 2011, 13(6): 777-785.

[9] Kelwick R, Kopniczky M, Bower I. A forward-design ap-proach to increase the production of poly-3-hydroxybutyrate in ge-netically engineered Escherichia coli. PLoS One, 2015, 10(2): e0117202.

[10] Meng DC, Shi ZY, Wu LP. Production and characterization of poly (3-hydroxypropionate-co-4-hydroxybutyrate) with fully controllable structures by recombinant Escherichia coli containing an engineered pathway. MetabEng, 2012, 14 (4): 317-324.

[11] Li ZJ, Shi ZY, Jian J. Production of poly (3-hydroxybu-tyrate-co-4-hydroxybutyrate) from unrelated carbon sources by metabolically engineered Escherichia coli. Metab Eng, 2010, 2 (4): 352-359.

[12] Lv L, Ren YL, Chen JC. Application of CRISPRi for pro-karyotic metabolic engineering involving multiple genes, a case study: Controllable P (3HB-co-4HB) biosynthesis. Metab Eng, 2015, 29: 160-168.

[13] Yang JE, Choi YJ, Lee SJ. Metabolic engineering of Esche-richia coli for biosynthesis of poly (3-hydroxybutyrate-co-3-hydroxyvalerate) from glucose. Appl Microbiol Biotechnol, 2014, 98(1): 95-104.

[14] Liu Q, Luo G, Zhou XR. Biosynthesis of poly(3-hydroxyde-canoate) and 3-hydroxydodecanoate dominating polyhydroxyal-kanoates by β-oxidation pathway inhibited Pseudomonas pu tida. Metab Eng, 2011, 13(1): 11-17.

[15] Kang Z, Du L, Kang J. Production of succinate and poly-hydroxyalkanoate from substrate mixture by metabolically engineered Escherichia coli. Bioresour Technol, 2011, 102 (11): 6600-6604.

[16] Jung YK, Lee SY. Efficient production of polylactic acid and its copolymers by metabolically engineered Escherichia coli. J Biotechnol, 2011, 151(1): 94-101.

[17] Taguchi S, Yamada M, Matsumoto K. A microbial factory for lactate-based polyesters using a lactate-polymerizing enzyme. Proc Natl Acad Sci, 2008, 105(45): 17323-17327.

[18] Yamada M, Matsumoto K, Nakai T. Microbial production of lactate-enriched poly with novel thermal properties. Biomacromolecules, 2009, 10(4): 677-681.

[19] Nduko JM, Matsumoto K, Ooi T. Effectiveness of xylose uti-lization for high yield production of lactate-enriched P (lactate-co-3-hydroxybutyrate) using a lactate-overproducing strain of Escherichia coli and an evolved lactate-polymerizing enzyme. Metab Eng, 2013, 15: 159-166.

[20] Yang TH, Kim TW, Kang HO. Biosynthesis of polylactic acid and its copolymers using evolved propionate CoA transferase and PHA synthase. Biotechnol Bioeng, 2010, 105 (1): 150-160.

[21] Jung YK, Kim TY, Park SJ. Metabolic engineering of Esch-erichia coli for the production of polylactic acid and its copoly-mers. Biotechnol Bioeng, 2010, 105(1): 161-171.

[22] Ohara K, Muroya A, Fukushima N. Functional characteriza-tion of LePGT1, a membrane-bound prenyltransferase involved in the geranylation of p-hydroxybenzoic acid. Biochem J, 2009, 421 (2): 231-241.

[23] Ohara K, Mito K, Yazaki K. Homogeneous purification and char-acterization of LePGT1-a membrane-bound aromatic substrate prenyltransferase involved in secondary metabolism of Lithosper-mumerythrorhizon. FEBS J, 2013, 280(11): 2572-2580.

[24] Wu H, Tuli L, Bennett GN. Metabolic transistor strategy for controlling electron transfer chain activity in Escherichia coli. Metab Eng, 2015, 28: 159-168.

[25] Wu H, Bennett GN, San KY. Metabolic control of respiratory lev-els in coenzyme Q biosynthesis-deficient Escherichia coli strains leading to fine-tune aerobic lactate fermentation. Biotechnol Bioeng, 2015, 112 (8): 1720-1726.

[26] Yang ZM. Application of tissue engineering in trauma repair. Journal of Traumatic Surgery, 2004, 2 (1): 1-6.

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