Skip to main content
Journal cover image

Detection of transketolase in bone marrow-derived insulin-producing cells: benfotiamine enhances insulin synthesis and glucose metabolism.

Journal articles  - Journal Article
Oh, S-H; Witek, RP; Bae, S-H; Darwiche, H; Jung, Y; Pi, L; Brown, A; Petersen, BE
Published in: Stem Cells Dev
2009

Adult bone marrow (BM)-derived insulin-producing cells (IPCs) are capable of regulating blood glucose levels in chemically induced hyperglycemic mice. Using cell transplantation therapy, fully functional BM-derived IPCs help to mediate treatment of diabetes mellitus. Here, we demonstrate the detection of the pentose phosphate pathway enzyme, transketolase (TK), in BM-derived IPCs cultured under high-glucose conditions. Benfotiamine, a known activator of TK, was not shown to affect the proliferation of insulinoma cell line, INS-1; however, when INS-1 cells were cultured with oxythiamine, an inhibitor of TK, cell proliferation was suppressed. Treatment with benfotiamine activated glucose metabolism in INS-1 cells in high-glucose culture conditions, and appeared to maximize the BM-derived IPCs ability to synthesize insulin. Benfotiamine was not shown to induce the glucose receptor Glut-2, however it was shown to activate glucokinase, the enzyme responsible for conversion of glucose to glucose-6-phosphate. Furthermore, benfotiamine-treated groups showed upregulation of the downstream glycolytic enzyme, glyceraldehyde phosphate dehydrogenase (GAPDH). However, in cells where the pentose phosphate pathway was blocked by oxythiamine treatment, there was a clear downregulation of Glut-2, glucokinase, insulin, and GAPDH. When benfotiamine was used to treat mice transplanted with BM-derived IPCs transplanted, their glucose level was brought to a normal range. The glucose challenge of normal mice treated with benfotiamine lead to rapidly normalized blood glucose levels. These results indicate that benfotiamine activates glucose metabolism and insulin synthesis to prevent glucose toxicity caused by high concentrations of blood glucose in diabetes mellitus.

Duke Scholars

Altmetric Attention Stats
Dimensions Citation Stats

Published In

Stem Cells Dev

DOI

EISSN

1557-8534

Publication Date

2009

Volume

18

Issue

1

Start / End Page

37 / 46

Location

United States

Related Subject Headings

  • Transketolase
  • Thiamine
  • Rats
  • Oxythiamine
  • Mice
  • Male
  • Insulin
  • Immunology
  • Hyperglycemia
  • Humans
 

Citation

APA
Chicago
ICMJE
MLA
NLM
Oh, S.-H., Witek, R. P., Bae, S.-H., Darwiche, H., Jung, Y., Pi, L., … Petersen, B. E. (2009). Detection of transketolase in bone marrow-derived insulin-producing cells: benfotiamine enhances insulin synthesis and glucose metabolism. Stem Cells Dev, 18(1), 37–46. https://doi.org/10.1089/scd.2007.0255
Oh, Seh-Hoon, Rafal P. Witek, Si-Hyun Bae, Houda Darwiche, Youngmi Jung, Liya Pi, Alicia Brown, and Bryon E. Petersen. “Detection of transketolase in bone marrow-derived insulin-producing cells: benfotiamine enhances insulin synthesis and glucose metabolism.Stem Cells Dev 18, no. 1 (2009): 37–46. https://doi.org/10.1089/scd.2007.0255.
Oh S-H, Witek RP, Bae S-H, Darwiche H, Jung Y, Pi L, et al. Detection of transketolase in bone marrow-derived insulin-producing cells: benfotiamine enhances insulin synthesis and glucose metabolism. Stem Cells Dev. 2009;18(1):37–46.
Oh, Seh-Hoon, et al. “Detection of transketolase in bone marrow-derived insulin-producing cells: benfotiamine enhances insulin synthesis and glucose metabolism.Stem Cells Dev, vol. 18, no. 1, 2009, pp. 37–46. Pubmed, doi:10.1089/scd.2007.0255.
Oh S-H, Witek RP, Bae S-H, Darwiche H, Jung Y, Pi L, Brown A, Petersen BE. Detection of transketolase in bone marrow-derived insulin-producing cells: benfotiamine enhances insulin synthesis and glucose metabolism. Stem Cells Dev. 2009;18(1):37–46.
Journal cover image

Published In

Stem Cells Dev

DOI

EISSN

1557-8534

Publication Date

2009

Volume

18

Issue

1

Start / End Page

37 / 46

Location

United States

Related Subject Headings

  • Transketolase
  • Thiamine
  • Rats
  • Oxythiamine
  • Mice
  • Male
  • Insulin
  • Immunology
  • Hyperglycemia
  • Humans