Departamento de Química Orgánica E Inorgánica, Facultad de Ciencias, and Instituto Universitario de Investigación del Agua, Cambio Climático Y Sostenibilidad, (IACYS), Universidad de Extremadura, Avenida de Elvas s/n, 06006, Badajoz, Spain.
Department of Chemistry and Biochemistry, Quebec Centre for Advanced Materials (QCAM/CQMF), FRQNT, Concordia University, 7141 Sherbrooke St. West, Montreal, QC, H4B 1R6, Canada.
Orig Life Evol Biosph. 2022 Sep;52(1-3):21-56. doi: 10.1007/s11084-022-09624-9. Epub 2022 Jul 7.
By paraphrasing one of Kipling's most amazing short stories (How the Leopard Got His Spots), this article could be entitled "How Sugars Became Homochiral". Obviously, we have no answer to this still unsolved mystery, and this perspective simply brings recent models, experiments and hypotheses into the homochiral homogeneity of sugars on earth. We shall revisit the past and current understanding of sugar chirality in the context of prebiotic chemistry, with attention to recent developments and insights. Different scenarios and pathways will be discussed, from the widely known formose-type processes to less familiar ones, often viewed as unorthodox chemical routes. In particular, problems associated with the spontaneous generation of enantiomeric imbalances and the transfer of chirality will be tackled. As carbohydrates are essential components of all cellular systems, astrochemical and terrestrial observations suggest that saccharides originated from environmentally available feedstocks. Such substances would have been capable of sustaining autotrophic and heterotrophic mechanisms integrating nutrients, metabolism and the genome after compartmentalization. Recent findings likewise indicate that sugars' enantiomeric bias may have emerged by a transfer of chirality mechanisms, rather than by deracemization of sugar backbones, yet providing an evolutionary advantage that fueled the cellular machinery.
通过改写吉卜林最令人惊叹的短篇小说之一(《豹斑是怎样来的》),本文可以题为“糖是如何变得手性的”。显然,我们对这个尚未解决的谜团还没有答案,这种观点只是将最近的模型、实验和假说纳入了地球上糖的手性同质性。我们将重新审视前生物化学背景下糖手性的过去和当前理解,关注最近的发展和见解。我们将讨论不同的情景和途径,从广为人知的福尔摩斯型过程到不太熟悉的过程,这些过程通常被视为非常规的化学途径。特别是,我们将探讨与手性不平衡的自发产生和手性转移相关的问题。由于碳水化合物是所有细胞系统的基本组成部分,天体化学和地球观测表明,糖来源于环境中可用的原料。这些物质能够在分隔后,通过整合营养物质、代谢和基因组来维持自养和异养机制。最近的发现同样表明,糖的对映体偏析可能是通过手性转移机制而不是糖骨架的外消旋化而产生的,但这种机制提供了一种进化优势,推动了细胞机制的发展。