Sulforaphane Protects against High Cholesterol‐Induced Mitochondrial Bioenergetics Impairments, Inflammation, and Oxidative Stress and Preserves Pancreatic <i>β</i>‐Cells Function

Catalina Carrasco‐Pozo, Kah Ni Tan, Martín Gotteland, Karin Borges

Oxidative Medicine and Cellular Longevity · 2017 · 38 citations · 60 references

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Abstract

Cholesterol plays an important role in inducing pancreatic <i>β</i>-cell dysfunction, leading to an impaired insulin secretory response to glucose. This study aimed to determine the protective effects of sulforaphane, a natural isothiocyanate Nrf2-inducer, against cholesterol-induced pancreatic <i>β</i>-cells dysfunction, through molecular and cellular mechanisms involving mitochondrial bioenergetics. Sulforaphane prevented cholesterol-induced alterations in the coupling efficiency of mitochondrial respiration, improving ATP turnover and spare capacity, and averted the impairment of the electron flow at complexes I, II, and IV. Sulforaphane also attenuated the cholesterol-induced activation of the NF<i>κ</i>B pathway, normalizing the expression of pro- and anti-inflammatory cytokines. In addition, it also inhibited the decrease in <i>sirtuin 1</i> expression and greatly increased <i>Pgc-1α</i> expression in Min6 cells. Sulforaphane increased the expression of antioxidant enzymes downstream of the Nrf2 pathway and prevented lipid peroxidation induced by cholesterol. The antioxidant and anti-inflammatory properties of sulforaphane and its ability to protect and improve mitochondrial bioenergetic function contribute to its protective action against cholesterol-induced pancreatic <i>β</i>-cell dysfunction. Our data provide a scientifically tested foundation upon which sulforaphane can be developed as nutraceutical to preserve <i>β</i>-cell function and eventually control hyperglycemia.

References

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