pathway Info Card

Creatine Transport

Information about Creatine Transport: characteristics, related genes and pathways, plus antibodies you can use for research. This page is being enriched constantly, if you see some information you would like this page to include please send your suggestions to us.

Overview of Creatine Transport

Most recent studies have shown that Creatine Transport shares some biological mechanisms with aging, antiport, cell-aging, cell-cycle, cell-death, energy-homeostasis, excretion, glucose-transport, glycosylation, intestinal-absorption, localization, membrane-depolarization, methylation, mitochondrial-transport, monocyte-differentiation, oxidative-phosphorylation, pathogenesis, symport, transport, urea-cycle.

Among the many pathways, these few ones have gauged particular interests from scientists studying Creatine Transport, and have been seen in publications frequently: aging, antiport, cell-aging, cell-cycle, cell-death, energy-homeostasis, excretion, glucose-transport, glycosylation, intestinal-absorption, localization, membrane-depolarization, methylation, mitochondrial-transport, monocyte-differentiation, oxidative-phosphorylation, pathogenesis, symport, transport, urea-cycle

Quite a number of genes have been found to play important roles in Creatine Transport, such as CALB2, CALCR, CALR, CD55, CHKA, CR2, DHRS4, GAMT, GATM, GYPA, INS, Itln1, Med10, SLC25A5, SLC6A12, SLC6A8, TDGF1, TM4SF1. See what Boster has to offer for the research of these genes by clicking the gene name links below and view a more detailed info card/product listing for that gene.

In a later update, we will include information such as current drugs and therapy solutions as well as on-going and past clinical trials for this pathway. Plesae stay updated.

Creatine Transport Related Genes

click to see detail information for each gene

CALB2 CALCR CALR
CD55 CHKA CR2
DHRS4 GAMT GATM
GYPA INS Itln1
Med10 SLC25A5 SLC6A12
SLC6A8 TDGF1 TM4SF1