Mitochondrial oxidative metabolism during respiratory infection in riboflavin deficient mice

S Brijlal1, A V Lakshmi, M S Bamji

  • 1National Institute of Nutrition, Indian Council of Medical Research, Jamai Osmania, Hyderabad, India.

Insights

Respiratory infections impair riboflavin metabolism, leading to increased vitamin loss. Riboflavin deficiency exacerbates infection

Area of Science:

  • Biochemistry
  • Nutritional Science
  • Immunology

Background:

  • Respiratory infections disrupt riboflavin metabolism, causing increased urinary riboflavin excretion.
  • Reduced liver Flavin adenine dinucleotide (FAD) levels during infection suggest vitamin mobilization from the liver.
  • Understanding the impact of low hepatic FAD on mitochondrial function during infection is crucial.

Purpose of the Study:

  • To investigate the functional consequences of lowered hepatic FAD levels during respiratory infection.
  • To examine the effects of infection on flavoprotein functions, specifically oxidative phosphorylation and beta-oxidation in liver mitochondria.
  • To compare the impact of infection on these functions in riboflavin-restricted versus control mice.

Main Methods:

  • Weanling mice were fed either a riboflavin-restricted or control diet for 18 days.
  • Mice were subsequently injected with a sublethal dose of Klebsiella pneumoniae to induce respiratory infection.
  • Mitochondrial functions, including state 3 respiratory rate and respiratory control ratio using specific substrates (palmitoyl-L-carnitine, glutamate), were assessed.
  • Liver mitochondrial beta-oxidation rates were measured.

Main Results:

  • Infection significantly lowered state 3 respiratory rate (27-29%) with palmitoyl-L-carnitine and glutamate in riboflavin-restricted mice.
  • A 10% reduction in state 3 respiratory rate with palmitoyl-L-carnitine was noted in control infected mice.
  • The respiratory control ratio decreased by 22% with palmitoyl-L-carnitine in infected riboflavin-restricted mice.
  • Beta-oxidation of palmitoyl-L-carnitine was significantly reduced (29%) in infected riboflavin-restricted mice.

Conclusions:

  • Respiratory infection exacerbates the negative effects of riboflavin deficiency on vital physiological functions.
  • Lowered hepatic FAD levels during infection impair mitochondrial oxidative phosphorylation and beta-oxidation.
  • Riboflavin status critically influences the host's ability to maintain metabolic function during respiratory infections.

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