F1F0 ATP Synthase-Cyclophilin D Interaction Contributes to Diabetes-Induced Synaptic Dysfunction and Cognitive Decline

Diabetes. 2016 Nov;65(11):3482-3494. doi: 10.2337/db16-0556. Epub 2016 Aug 23.

Abstract

Mitochondrial abnormalities are well known to cause cognitive decline. However, the underlying molecular basis of mitochondria-associated neuronal and synaptic dysfunction in the diabetic brain remains unclear. Here, using a mitochondrial single-channel patch clamp and cyclophilin D (CypD)-deficient mice (Ppif -/-) with streptozotocin-induced diabetes, we observed an increase in the probability of Ca2+-induced mitochondrial permeability transition pore (mPTP) opening in brain mitochondria of diabetic mice, which was further confirmed by mitochondrial swelling and cytochrome c release induced by Ca2+ overload. Diabetes-induced elevation of CypD triggers enhancement of F1F0 ATP synthase-CypD interaction, which in turn leads to mPTP opening. Indeed, in patients with diabetes, brain cypD protein levels were increased. Notably, blockade of the F1F0 ATP synthase-CypD interaction by CypD ablation protected against diabetes-induced mPTP opening, ATP synthesis deficits, oxidative stress, and mitochondria dysfunction. Furthermore, the absence of CypD alleviated deficits in synaptic plasticity, learning, and memory in diabetic mice. Thus, blockade of ATP synthase interaction with CypD provides a promising new target for therapeutic intervention in diabetic encephalopathy.

MeSH terms

  • Animals
  • Cognition / physiology
  • Cognition Disorders / metabolism*
  • Cognition Disorders / pathology
  • Cognition Disorders / physiopathology
  • Cognitive Dysfunction / metabolism*
  • Cognitive Dysfunction / pathology
  • Cognitive Dysfunction / physiopathology
  • Cyclophilins / deficiency
  • Cyclophilins / genetics
  • Cyclophilins / metabolism*
  • Diabetes Mellitus, Experimental / metabolism*
  • Diabetes Mellitus, Experimental / pathology
  • Diabetes Mellitus, Experimental / physiopathology
  • Humans
  • Long-Term Potentiation / physiology
  • Male
  • Mice
  • Mice, Knockout
  • Mitochondria / metabolism
  • Mitochondrial Proton-Translocating ATPases / genetics
  • Mitochondrial Proton-Translocating ATPases / metabolism*
  • Peptidyl-Prolyl Isomerase F
  • Protein Binding
  • Reactive Oxygen Species / metabolism
  • Synapses / metabolism*
  • Synapses / physiology*

Substances

  • Peptidyl-Prolyl Isomerase F
  • PPIF protein, mouse
  • Reactive Oxygen Species
  • F1F0-ATP synthase
  • Mitochondrial Proton-Translocating ATPases
  • Cyclophilins