The hypoxia-inducible factor (HIF) family of transcription factors directs a coordinated cellular response to hypoxia that includes the transcriptional regulation of a number of metabolic enzymes. Chuvash polycythemia (CP) is an autosomal recessive human disorder in which the regulatory degradation of HIF is impaired, resulting in elevated levels of HIF at normal oxygen tensions. Apart from the polycythemia, CP patients have marked abnormalities of cardiopulmonary function. No studies of integrated metabolic function have been reported. Here we describe the response of these patients to a series of metabolic stresses: exercise of a large muscle mass on a cycle ergometer, exercise of a small muscle mass (calf muscle) which allowed noninvasive in vivo assessments of muscle metabolism using 31 P magnetic resonance spectroscopy, and a standard meal tolerance test. During exercise, CP patients had early and marked phosphocreatine depletion and acidosis in skeletal muscle, greater accumulation of lactate in blood, and reduced maximum exercise capacities. Muscle biopsy specimens from CP patients showed elevated levels of transcript for pyruvate dehydrogenase kinase, phosphofructokinase, and muscle pyruvate kinase. In cell culture, a range of experimental manipulations have been used to study the effects of HIF on cellular metabolism. However, these approaches provide no potential to investigate integrated responses at the level of the whole organism. Although CP is relatively subtle disorder, our study now reveals a striking regulatory role for HIF on metabolism during exercise in humans. These findings have significant implications for the development of therapeutic approaches targeting the HIF pathway.
The transcription factor, hypoxia‐inducible factor (HIF) regulates the expression of a number of metabolic genes. In the recessive condition of Chuvash Polycythemia (CP), the normal degradation of HIF in euoxia is slowed by functional mutation within the von Hippel‐Lindau (VHL) gene. Thus the disease of CP provides an opportunity to understand the role of the HIF‐VHL pathway in metabolic regulation at a systemic level. We recruited 5 CP patients and 5 controls, matched for gender, and similar for age, height and weight (CP vs control: 28±8 vs 32±12 yrs; 1.67±0.1 vs 1.74±0.1 m; 61±6 vs 72±6 kg; mean±s.d.). We measured work rate and lactate during an exercise capacity test on a cycle ergometer, and skeletal muscle magnetic resonance spectroscopy at rest and during light exercise (3, 4 & 5 Watt). Compared with controls, CP patients showed a limited exercise capacity (CP vs control: 2.4±0.9 vs 3.4±0.8 W/kg; p < 0.05), early lactate accumulation, greater phosphocreatine (PCr) depletion (Fig.1) and a greater fall in pH during exercise. We conclude that the VHL‐HIF pathway significantly affects metabolic regulation at a systemic level.Figure 1
Intracellular responses to hypoxia are coordinated by the von Hippel-Lindau--hypoxia-inducible factor (VHL-HIF) transcriptional system. This study investigated the potential role of the VHL-HIF pathway in human systems-level physiology. Patients diagnosed with Chuvash polycythaemia, a rare disorder in which VHL signalling is specifically impaired, were studied during acute hypoxia and hypercapnia. Subjects breathed through a mouthpiece and ventilation was measured while pulmonary vascular tone was assessed echocardiographically. The patients were found to have elevated basal ventilation and pulmonary vascular tone, and ventilatory, pulmonary vasoconstrictive and heart rate responses to acute hypoxia were greatly increased, as were heart rate responses to hypercapnia. The patients also had abnormal pulmonary function on spirometry. This study's findings demonstrate that the VHL-HIF signalling pathway, which is so central to intracellular oxygen sensing, also regulates the organ systems upon which cellular oxygen delivery ultimately depends.
Background: The von Hippel-Lindau tumour suppressor protein-hypoxia- inducible factor (VHL-HIF) pathway has attracted widespread medical interest as a transcriptional system controlling cellular responses to hypoxia, yet insights into its role in systemic human physiology remain limited. Chuvash polycythaemia has recently been defined as a new form of VHL-associated disease, distinct from the classical VHL-associated inherited cancer syndrome, in which germline homozygosity for a hypomorphic VHL allele causes a generalised abnormality in VHL-HIF signalling. Affected individuals thus provide a unique opportunity to explore the integrative physiology of this signalling pathway. This study investigated patients with Chuvash polycythaemia in order to analyse the role of the VHL-HIF pathway in systemic human cardiopulmonary physiology.Methods and Findings: Twelve participants, three with Chuvash polycythaemia and nine controls, were studied at baseline and during hypoxia. Participants breathed through a mouthpiece, and pulmonary ventilation was measured while pulmonary vascular tone was assessed echocardiographically. Individuals with Chuvash polycythaemia were found to have striking abnormalities in respiratory and pulmonary vascular regulation. Basal ventilation and pulmonary vascular tone were elevated, and ventilatory, pulmonary vasoconstrictive, and heart rate responses to acute hypoxia were greatly increased.Conclusions: The features observed in this small group of patients with Chuvash polycythaemia are highly characteristic of those associated with acclimatisation to the hypoxia of high altitude. More generally, the phenotype associated with Chuvash polycythaemia demonstrates that VHL plays a major role in the underlying calibration and homeostasis of the respiratory and cardiovascular systems, most likely through its central role in the regulation of HIF.
The Chuvash form of polycythemia is an autosomal recessive disorder common to a large number of families in central Russia. Affected individuals have been reported to be homozygous for an Arg200Trp mutation in the von Hippel-Lindau (VHL) gene. We have screened 78 patients with erythrocytosis and found 8 of Bangladeshi and Pakistani origin to be homozygous for the Arg200Trp mutation and another of English descent to be heterozygous. Of these patients, 5 have elevated serum erythropoietin (Epo) levels, while the other 4 have Epo values in the normal range. The heterozygous patient does not fulfill the Chuvash criterion for homozygosity of the Arg200Trp mutation and consequently may harbor a further, as yet uncharacterized, mutation. This mutation has a wider geographic distribution than originally presumed and haplotype analysis suggests a common origin of the Arg200Trp mutation in the 4 families, but it still remains to be established if it has arisen independently of the Chuvash population.