Stable isotope labeling allows researchers to study metabolic pathways in vivo in a safe manner.
Stable isotope-labeled compounds are used as environmental pollutant standards for the detection of air, water, soil, sediment and food.
In addition to treating various diseases, isotopes are used for imaging, diagnosis, and newborn screening.
Small molecule compounds labeled with stable isotopes can be used as chemical reference for chemical identification, qualitative, quantitative, detection, etc. Various types of NMR solvents can be used to study the structure, reaction mechanism and reaction kinetics of compounds.
Stable isotope labeling allows researchers to study metabolic pathways in vivo in a safe manner.
Stable isotope-labeled compounds are used as environmental pollutant standards for the detection of air, water, soil, sediment and food.
General Information |
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Catalog: BLP-013381 |
Molecular Formula: C5[13C]H12O6 |
Molecular Weight: 181.15 |
Chemical Structure |
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Synonyms | L-[6-13C]talose; L-talose-6-13C |
Related CAS | 23567-25-1 (unlabelled) |
L-talose-[6-13C], a stable isotope-labeled sugar, finds extensive utility across diverse scientific research realms. Here are the key applications of L-talose-[6-13C]:
Metabolic Flux Analysis: Employing L-talose-[6-13C] in metabolic flux analysis allows for the meticulous tracking of carbon flow within metabolic pathways. By integrating this labeled sugar into biological systems, researchers can meticulously monitor the fate and distribution of carbon atoms within cellular metabolism. This comprehensive data plays a pivotal role in unraveling the intricate dynamics of metabolic pathways and pinpointing critical rate-limiting steps.
Structural Biology: In the domain of structural biology, L-talose-[6-13C] stands out as a crucial probe for NMR spectroscopy investigations. The distinctive signal provided by the 13C label permits researchers to delve into the structure and dynamics of carbohydrate-binding proteins with precision. This in-depth analysis aids in shedding light on protein-ligand interactions and unraveling the molecular underpinnings of carbohydrate recognition, enriching our understanding of intricate biological processes.
Glycomics and Glycosylation Studies: Pivotal in glycomics research, L-talose-[6-13C] acts as a key tool for studying glycosylation patterns and carbohydrate modifications. Through analyzing the integration of the labeled sugar into glycoproteins and glycolipids, scientists can glean valuable insights into the biosynthesis and processing of complex glycan structures. This knowledge is indispensable for deciphering the role of glycosylation in the realms of health and disease, offering nuanced perspectives on critical biological mechanisms.
Biosynthetic Pathway Elucidation: Researchers leverage L-talose-[6-13C] to untangle the intricate biosynthetic pathways governing complex carbohydrates. By administering the labeled sugar to organisms, scientists can trace its incorporation into various metabolites, unveiling the series of steps and enzymes involved in synthesizing specific carbohydrates. This deep understanding serves as a cornerstone for advancements in metabolic engineering and facilitates the production of rare sugars, shaping the landscape of biotechnological innovation.
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