Thermal decomposition of the amino acids glycine, cysteine, aspartic acid, asparagine, glutamic acid, glutamine, arginine and histidine.

Q1 Biochemistry, Genetics and Molecular Biology BMC Biophysics Pub Date : 2018-02-09 eCollection Date: 2018-01-01 DOI:10.1186/s13628-018-0042-4
Ingrid M Weiss, Christina Muth, Robert Drumm, Helmut O K Kirchner
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引用次数: 216

Abstract

Background: The pathways of thermal instability of amino acids have been unknown. New mass spectrometric data allow unequivocal quantitative identification of the decomposition products.

Results: Calorimetry, thermogravimetry and mass spectrometry were used to follow the thermal decomposition of the eight amino acids G, C, D, N, E, Q, R and H between 185 °C and 280 °C. Endothermic heats of decomposition between 72 and 151 kJ/mol are needed to form 12 to 70% volatile products. This process is neither melting nor sublimation. With exception of cysteine they emit mainly H2O, some NH3 and no CO2. Cysteine produces CO2 and little else. The reactions are described by polynomials, AA→a NH3+b H2O+c CO2+d H2S+e residue, with integer or half integer coefficients. The solid monomolecular residues are rich in peptide bonds.

Conclusions: Eight of the 20 standard amino acids decompose at well-defined, characteristic temperatures, in contrast to commonly accepted knowledge. Products of decomposition are simple. The novel quantitative results emphasize the impact of water and cyclic condensates with peptide bonds and put constraints on hypotheses of the origin, state and stability of amino acids in the range between 200 °C and 300 °C.

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热分解氨基酸甘氨酸、半胱氨酸、天冬氨酸、天冬氨酸、谷氨酸、谷氨酰胺、精氨酸和组氨酸。
背景:氨基酸热不稳定性的途径尚不清楚。新的质谱数据允许对分解产物进行明确的定量鉴定。结果:用量热法、热重法和质谱法对8种氨基酸G、C、D、N、E、Q、R、H在185 ~ 280℃间的热分解进行了跟踪。生成12 ~ 70%挥发性产物需要72 ~ 151 kJ/mol的吸热分解热。这个过程既不是融化也不是升华。除了半胱氨酸外,它们主要释放H2O和一些NH3,不释放CO2。半胱氨酸只产生二氧化碳和少量其他物质。反应用多项式AA→a NH3+b H2O+c CO2+d H2S+e,系数为整数或半整数。固体单分子残基富含肽键。结论:20种标准氨基酸中的8种在定义明确的特征温度下分解,与普遍接受的知识相反。分解的产物很简单。新的定量结果强调了水和具有肽键的循环缩合物的影响,并对氨基酸在200°C至300°C范围内的起源、状态和稳定性的假设提出了限制。
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BMC Biophysics
BMC Biophysics BIOPHYSICS-
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