4.7 Article

PUFA Biosynthesis Pathway in Marine Scallop Chlamys nobilis Reeve

Journal

JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY
Volume 62, Issue 51, Pages 12384-12391

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/jf504648f

Keywords

Chlamys nobilis; PUFA biosynthesis; Delta 8 pathway; marine bivalve

Funding

  1. National Natural Science Foundation of China [31372528]
  2. Ministry of Education of P. R. China [20114402110001]
  3. China Modern Agro-industry Technology Research System [CARS-48]
  4. National Basic Research Program of China (973 Program) [2010CB126402]
  5. Knowledge Innovation Program of the Chinese Academy of Sciences [SIDSSE-QN-201407]
  6. Department of Education [2050205-95]
  7. Department of Science Technology [2013B020503061]
  8. Oceanic and Fisheries Administrator of Guangdong Province, China [B201300B06]
  9. MRC [MC_UU_12013/1] Funding Source: UKRI
  10. Medical Research Council [MC_UU_12013/1] Funding Source: researchfish

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Long-chain polyunsaturated fatty acids (LC-PUFAs) are essential in important physiological processes. However, the endogenous PUFA biosynthesis pathway is poorly understood in marine bivalves. Previously, a fatty acyl desaturase (Fad) with ?5 activity was functionally characterized and an elongase termed Elovl2/5 was reported to efficiently elongate 18:2n-6 and 18:3n-3 to 20:2n-6 and 20:3n-3 respectively in Chlamys nobilis. In this study, another elongase and another Fad were identified. Functional characterization in recombinant yeast showed that the newly cloned elongase can elongate 20:4n-6 and 20:5n-3 to C22 and C24, while the newly cloned scallop Fad exhibited a ?8-desaturation activity, and could desaturate exogenously added PUFA 20:3n-3 and 20:2n-6 to 20:4n-3 and 20:3n-6 respectively, providing the first compelling evidence that noble scallop could de novo biosynthesize 20:5n-3 and 20:4n-6 from PUFA precursors though the ?8 pathway. No Delta 6 or Delta 4 activity was detected for this Fad. Searching against our scallop transcriptome database failed to find any other Fad-like genes, indicating that noble scallop might have limited ability to biosynthesize 22:6n-3. Interestingly, like previously characterized Elovl2/5, the two newly cloned genes showed less efficient activity toward n-3 PUFA substrates than their homologous n-6 substrates, resulting in a relatively low efficiency to biosynthesize n-3 PUFA, implying an adaption to marine environment.

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