A Feasibility Study of Bezafibrate in Mitochondrial Myopathy
试验速览
- 阶段
- 2 期
- 状态
- 已完成
- 发起方
- 入组人数
- 6
- 试验地点
- 1
- 主要终点
- Change in Respiratory Chain Enzyme Activity
研究概览
简要总结
The purpose of this study is to gather preliminary data on whether bezafibrate can improve cellular energy production in mitochondrial disease.
Mitochondrial diseases are rare inherited disorders that arise due to deficient energy production within the cells of the body. Consequently, the typical clinical features arise in organs with high energy requirements. Mitochondrial disorders exhibit highly variable clinical effects, both between individuals and within families. Characteristic symptoms include muscle weakness (myopathy), hearing loss, migraine, epilepsy and stroke like episodes in addition to diabetes and heart problems. Mitochondrial disorders can therefore impact considerably on both quality of life and life expectancy. Despite this, no proven disease modifying treatments are available.
Pre-clinical studies have identified that several existing medications improve mitochondrial function. Of these, bezafibrate has the best supportive data and, because it is already licensed as a treatment for high blood fats, has a well characterised side effect profile.
The investigators will therefore conduct a feasibility study of bezafibrate in people with mitochondrial myopathy. Ten affected participants will be recruited and will receive a titrating course of bezafibrate three times daily for 12 weeks.
详细描述
Mitochondrial disorders are genetically determined metabolic diseases affecting approximately 1 in 5000 people. Current strategies for treating mitochondrial disorders are limited, and restricted to alleviating symptoms. A recently published Cochrane review did not identify any disease modifying treatments of proven benefit. There is therefore an urgent and currently unmet need for treatments that modify the underlying biochemical deficit and disease trajectory.
Improving deficient oxidative phosphorylation (OXPHOS) pathways through induction of mitochondrial biogenesis is a potential approach to the treatment of mitochondrial disorders. This involves stimulating transcription factors for both nuclear and mitochondrial genomes simultaneously in order to up-regulate respiratory chain (RC) gene expression. This role is fulfilled by peroxisome proliferator activated receptor (PPAR)-γ coactivator-1α (PGC-1α); a pivotal transcriptional co-factor widely considered the master regulator of mitochondrial biogenesis.
PGC-1α interacts with a number of transcription factors. These include α, β/δ and γ isoforms of the peroxisomal proliferator activated receptors (PPARs). This group of ubiquitously expressed nuclear receptors is activated by binding of fatty acids. Subsequently, transcription of genes involved in mitochondrial fatty acid oxidation is induced, thereby enabling cellular metabolic shift from glycolysis. Additionally, PGC-1α co-activates estrogen related receptor alpha (ERRα); nuclear respiratory factors (NRF) 1 and 2 (transcription factors bound to promoter regions of target nuclear genes involved in the respiratory chain); and TFAM (transcription factor A mitochondrial), which modulates mitochondrial DNA transcription and replication.
PGC-1α expression is induced through cold exposure, starvation and exercise. The PPARs, AMP-protein activated kinase (AMPK) and sirtuin 1 (Sirt1) also increase PGC-1α activity and provide a means through which this pathway can be pharmacologically manipulated. Indeed, several compounds have been identified that exert their effect in this way including: bezafibrate and the glitazones (PPAR agonists); metformin and AICAR (AMPK); and resveratrol (Sirt1). Of these, bezafibrate, glitazones and metformin have established relevance in diabetes and hyperlipidaemia. Their mechanism of action also provides a rationale for their use in other metabolic disorders such as obesity and mitochondrial disease.
Indeed,bezafibrate has shown promise as a disease modifying pharmaceutical agent in pre-clinical studies using both cellular and animal models of mitochondrial myopathy.
研究设计
- 研究类型
- Interventional
- 分配方式
- Na
- 干预模型
- Single Group
- 主要目的
- Other
- 盲法
- None
入排标准
- 年龄范围
- 18 Years 至 64 Years(Adult)
- 性别
- All
- 接受健康志愿者
- 否
入选标准
- 未提供
排除标准
- 未提供
研究组 & 干预措施
Interventional
Bezafibrate tablets (200-600mg) three times daily for 12 weeks.
干预措施: Bezafibrate (Drug)
结局指标
主要结局
Change in Respiratory Chain Enzyme Activity
时间窗: baseline and 12 weeks
次要结局
- Change in citrate synthase(baseline and 12 weeks)
- Change in mitochondrial DNA copy number(baseline and 12 weeks)
- Change in COX negative fibres(baseline and 12 weeks)
- Change in serum Fibroblast Growth Factor-21 concentration(baseline, 3, 6, 9, 12 weeks)
- Change in PGC-1alpha concentration(baseline, 3, 6, 9, 12 weeks)
- Change in micro-RNA expression pattern(baseline, 3, 6, 9, 12 weeks)
- Change in cardiac 31P-MRS(baseline and 12 weeks)
- Change in cardiac cine MRI(baseline and 12 weeks)
- Change in skeletal muscle 31P-MRS(baseline and 12 weeks)
- Change in IPAQ (international physical activity questionnaire) score(baseline, 6 and 12 weeks)
- Change in accelerometry(baseline, 6 and 12 weeks)
- Change in Timed Up and Go (TUG) time(baseline, 6 and 12 weeks)
- Change in NMDAS (Newcastle Mitochondrial Disease Adult Scale) score(baseline, 6 and 12 weeks)
- Change in heteroplasmy level(baseline and 12 weeks)
- Change in NMQ (Newcastle Mitochondrial Disease Quality of Life) Score(baseline, 6 and 12 weeks)
- Change in Fatigue Impact Scale score(baseline, 6 and 12 weeks)
- Number of Adverse Events(0,1,2,3,4,5,6,7,8,9,10,11,12,13,14 weeks)
- Change in Full Blood Count(0,1,2,3,4,5,6,7,8,9,10,11,12 weeks)
- Change in Urea & Electrolytes(0,1,2,3,4,5,6,7,8,9,10,11,12 weeks)
- Change in Liver Function Tests(0,1,2,3,4,5,6,7,8,9,10,11,12 weeks)
- Change in Creatine Kinase(0,1,2,3,4,5,6,7,8,9,10,11,12 weeks)
- Change in Prothrombin Time(0,1,2,3,4,5,6,7,8,9,10,11,12 weeks)
