Synthesis and mammalian cell compatibility of light-released glycan precursors for controlled metabolic engineering.
Synthesis and mammalian cell compatibility of light-released glycan precursors for controlled metabolic engineering.
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DOI:
10.1016/j.bmc.2022.116918
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发表时间:
2022-09-15
影响因子:
3.5
通讯作者:
Fehl, Charlie
中科院分区:
文献类型:
--
作者:
Kondor, Courtney A.;Gorantla, Jaggaiah N.;Leonard, Garry D.;Fehl, Charlie
关键词:
Sugar additions to biomolecules, or glycans, are some of the most abundant biomolecule modifications in biology because they enable cells to adapt to changing nutrient and stress conditions. An unmet challenge for the field of glycobiology is the study of glycan biosynthetic pathways with chemical control, especially in live cell settings. The objective of this study was to create biocompatible glycan precursors with controlled release properties. Here, we report eleven “caged” sugar probes that release glycan biosynthetic precursor molecules upon light exposure. The specific sugar pathways we target with our probes regulate the addition of the N-acetyl sugars GlcNAc, GalNAc, and sialic acid onto biomolecules in cells, each of which has the potential to alter glycan processes involved in cell morphology, signaling, and behavior. We hypothesized that our glycan precursor probes would remain biologically inert until light-initiated decaging conditions were met, avoiding biological activities including metabolism and cytotoxicity. The photocaged analogs of GlcNAc, GalNAc, and ManNAc (sialic acid precursor) sugars, which we call “photo-sugars,” were released within minutes of light exposure at their optimal wavelengths. During the course of the study, we characterized the cell compatibility of these sugars under their respective decaging conditions, and found highly cell compatible GlcNAc, GalNAc, and ManNAc photocaged precursors. Release of GlcNAc-1-phosphate precursors led to altered ATP levels in cells, demonstrating preliminary metabolic engineering. We envision these probes as useful additions to the chemical glycobiology field that will enable spatiotemporal control over glycosylation pathways in living mammalian cells.
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影响因子:
16.6
作者:
Chang, Pamela V.;Chen, Xing;Smyrniotis, Chris;Xenakis, Alexander;Hu, Tianshun;Bertozzi, Carolyn R.;Wu, Peng
通讯作者:
Wu, Peng
影响因子:
4.3
作者:
Ma, Junfeng;Li, Yaoxiang;Wu, Ci
通讯作者:
Wu, Ci
DOI:
10.1083/jcb.201501101
发表时间:
2015-03-30
期刊:
The Journal of cell biology
影响因子:
--
作者:
Bond MR;Hanover JA
通讯作者:
Hanover JA
影响因子:
4.8
作者:
Kreppel, LK;Hart, GW
通讯作者:
Hart, GW
影响因子:
5.4
作者:
Cheng, Bo;Wan, Yi;Chen, Xing
通讯作者:
Chen, Xing