Broad Chain-Length Specificity of the Alkane-Forming Enzymes NoCER1A and NoCER3A/B in Nymphaea odorata

Author:

Kojima Hisae12,Yamamoto Kanta2,Suzuki Takamasa3,Hayakawa Yuri2,Niwa Tomoko2,Tokuhiro Kenro4,Katahira Satoshi4,Higashiyama Tetsuya56ORCID,Ishiguro Sumie2ORCID

Affiliation:

1. Technical Center, Nagoya University , Nagoya, 464-8601 Japan

2. Graduate School of Bioagricultural Sciences, Nagoya University , Nagoya, 464-8601 Japan

3. College of Bioscience and Biotechnology, Chubu University , Kasugai, 487-8501 Japan

4. Toyota Central R&D Labs., Inc. , Nagakute, 480-1192 Japan

5. Institute of Transformative Bio-Molecules (WPI-ITbM), Nagoya University , Nagoya, 464-8601 Japan

6. Graduate School of Science, The University of Tokyo , Tokyo, 113-0033 Japan

Abstract

Abstract Many terrestrial plants produce large quantities of alkanes for use in epicuticular wax and the pollen coat. However, their carbon chains must be long to be useful as fuel or as a petrochemical feedstock. Here, we focus on Nymphaea odorata, which produces relatively short alkanes in its anthers. We identified orthologs of the Arabidopsis alkane biosynthesis genes AtCER1 and AtCER3 in N. odorata and designated them NoCER1A, NoCER3A and NoCER3B. Expression analysis of NoCER1A and NoCER3A/B in Arabidopsis cer mutants revealed that the N. odorata enzymes cooperated with the Arabidopsis enzymes and that the NoCER1A produced shorter alkanes than AtCER1, regardless of which CER3 protein it interacted with. These results indicate that AtCER1 frequently uses a C30 substrate, whereas NoCER1A, NoCER3A/B and AtCER3 react with a broad range of substrate chain lengths. The incorporation of shorter alkanes disturbed the formation of wax crystals required for water-repellent activity in stems, suggesting that chain-length specificity is important for surface cleaning. Moreover, cultured tobacco cells expressing NoCER1A and NoCER3A/B effectively produced C19–C23 alkanes, indicating that the introduction of the two enzymes is sufficient to produce alkanes. Taken together, our findings suggest that these N. odorata enzymes may be useful for the biological production of alkanes of specific lengths. 3D modeling revealed that CER1s and CER3s share a similar structure that consists of N- and C-terminal domains, in which their predicted active sites are respectively located. We predicted the complex structure of both enzymes and found a cavity that connects their active sites.

Funder

Ministry of Education, Culture, Sports, Science and Technology

Japan Science and Technology Agency

Japan Society for the Promotion of Science

Publisher

Oxford University Press (OUP)

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