吉打邦脂肪酶的生化表征:尽管长链脂肪酸含量占主导地位,但其对短链脂肪酸的偏好

Q3 Chemistry Molekul Pub Date : 2023-07-10 DOI:10.20884/1.jm.2023.18.2.8302
Taritsu Hazal Faradis, Meilynda Pomeistia, Nurul Hasan Basri, J. Ardhuha, E. Gunawan, L. R. Savalas
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引用次数: 0

摘要

脂肪酶是一种对脂质底物具有高度特异性的多用途酶。它们有许多工业应用,如食品、制药和绿色燃料。到目前为止,大多数探索的脂肪酶来自微生物和动物来源,而来自植物的脂肪酶研究较少。本研究旨在对ketapang (Terminalia catappa Linn)脂肪酶进行表征。脂肪酶是从发芽的吉打邦种子中分离得到的。用初榨椰子油(VCO)水解测定其活性。ketapang脂肪酶的生化表征包括最佳温度、pH、动力学、金属离子添加和底物特异性分析。结果表明,吉打邦脂肪酶的最适温度为45℃,pH值为7.5。Ca2+提高了脂酶活性,而Na+、K+、Mg2+、Zn2+、Fe2+和Cu2+则不同程度地抑制了ketapang脂肪酶的活性。SDS-PAGE和native-PAGE分析的比较表明,ketapang脂肪酶由多个蛋白质亚基组成。进一步的凝胶内实验表明,54 kDa、35 kDa、~16 kDa和12 kDa的两条带蛋白对A -萘酰棕榈酸酯底物具有溶脂活性。在对不同显色脂肪酸底物的检测中,尽管吉打邦油籽主要由长脂肪酸(C18)组成,但其脂肪酶对短链脂肪酸(C4和C8)的特异性最高。由于对短脂肪酸具有高脂解活性的脂肪酶被认为是酯酶,因此ketapang脂肪酶的酯酶活性尚未确定。
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Biochemical Characterization of Ketapang Lipase: Its Preference to Short-Chain Fatty Acids despite the Long-Chain Fatty Acids Dominant Content
Lipases are versatile enzymes with high specificity toward lipid substrate. They have many industrial applications, such as in food, pharmacy, and green fuel. So far, most explored lipases are from microbial and animal sources, whereas those from plants are less studied. The present study aims to characterize ketapang (Terminalia catappa Linn) lipase. The lipase was isolated from germinating ketapang seeds. The activity was determined by hydrolysis of virgin coconut oil (VCO). Biochemical characterization of ketapang lipase includes the optimum temperature, pH, kinetics, metal ions addition, and analysis of substrate specificity. It was shown that ketapang lipase has an optimum temperature of 45 oC, pH 7.5. Ca2+ increases the lipase activity, whereas Na+, K+, Mg2+, Zn2+, Fe2+, and Cu2+ inhibit ketapang lipase to various extents. A comparison of SDS-PAGE and native-PAGE analysis showed that ketapang lipase consists of several protein subunits. A further test by in-gel assay revealed that the 54 kDa, 35 kDa, two bands at ~16 kDa, and 12 kDa proteins showed lipolytic activity against a-naphthyl palmitate substrate. When tested on various chromogenic fatty acid substrates, ketapang lipase showed the highest specificity against short-chain fatty acids (C4 and C8), despite the fact that ketapang oil seed composes mainly of long fatty acid (C18). Since lipases that have high lipolytic activity toward short fatty acids are considered esterases, the esterase activity of ketapang lipase is yet to be determined.
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来源期刊
Molekul
Molekul Chemistry-Chemistry (all)
CiteScore
1.30
自引率
0.00%
发文量
31
审稿时长
4 weeks
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