Clinico-pathological and Molecular Spectrum of Mitochondrial Polymerase γ Mutations in a Cohort from India

Sekar Deepha1,2, Periyasamy Govindaraj1,2,3,4, Bindu Parayil Sankaran2,5,6

  • 1Department of Neuropathology, National Institute of Mental Health and Neurosciences (NIMHANS), Bangalore, India.

Insights

This study details POLG mutations in Indian patients with mitochondrial diseases, identifying common variants and their associated clinical features. It highlights the clinico-pathological and molecular spectrum of these mutations in the Indian population.

Area of Science:

  • Genetics
  • Neurology
  • Molecular Biology

Background:

  • Polymerase gamma (POLG) mutations are a significant cause of inherited mitochondrial diseases, presenting diverse clinical phenotypes.
  • Data on POLG mutations in India is scarce, necessitating localized research.

Purpose of the Study:

  • To investigate the clinico-pathological and molecular characteristics of POLG mutations in Indian patients.
  • To identify common POLG variations and their associated phenotypes in the Indian population.

Main Methods:

  • Sequencing of all exons and intron-exon boundaries of the POLG gene in 446 patients with suspected mitochondrial disorders.
  • Clinical assessment, muscle biopsy, and respiratory chain enzyme analysis were performed.

Main Results:

  • POLG mutations were identified in 19 (4.26%) patients, with onset ranging from 5 to 55 years.
  • Chronic progressive external ophthalmoplegia (CPEO) and CPEO plus were the most frequent phenotypes.
  • Eight pathogenic POLG variations, including two novel ones (p.G132R, p.V1106A), were found. p.L304R and p.W748S were the most common mutations.

Conclusions:

  • This study provides the first extensive overview of the clinico-pathological and molecular spectrum of POLG mutations in India.
  • POLG mutations contribute significantly to mitochondrial disorders in India, with specific common variants identified.

Related Concept Videos

Animal Mitochondrial Genetics02:59

Animal Mitochondrial Genetics

Among all the organelles in an animal cell, only mitochondria have their own independent genomes. Animal mitochondrial DNA is a double-stranded, closed-circular molecule with around 20,000 base pairs. Mitochondrial DNA is unique in that one of its two strands, the heavy, or H, -strand is guanine rich, whereas the complementary strand is cytosine rich and called the light, or L, -strand. Compared to nuclear DNA, mitochondrial DNA has a very low percentage of non-coding regions and is marked by...
8.5K
Mitochondrial Precursor Proteins01:39

Mitochondrial Precursor Proteins

Mitochondrial precursors are partially unfolded or loosely folded polypeptide chains. Newly synthesized precursors are inhibited from spontaneously folding into their native conformation by the cytosolic chaperones, heat shock proteins 70 (Hsp70), and mitochondrial import stimulation factors (MSFs). Precursors bound to MSFs are guided to the TOM70-TOM37 receptors, while precursors bound to Hsp70  chaperones are targetted to TOM20-TOM22 receptor complexes.
Most of the mitochondrial...
3.3K
Spontaneous and Induced Mutations01:30

Spontaneous and Induced Mutations

Spontaneous mutations arise infrequently during DNA replication due to errors in the process. A key factor behind these errors is tautomeric shifts in nitrogenous bases, where bases transition from keto to enol forms or amino to imino forms. This shift can alter base-pairing rules, leading to mutations. Additionally, reactive oxygen species (ROS) arising from aerobic metabolism can damage DNA, resulting in depurination (loss of a purine base) or depyrimidination (loss of a pyrimidine base).
921
Point and Frameshift Mutations01:30

Point and Frameshift Mutations

Point mutations are genetic alterations involving the change of a single nucleotide base pair in DNA. Depending on how the alteration affects protein synthesis, they can lead to various consequences.Point mutations fall into the following types:Silent mutations occur when a nucleotide change does not alter the amino acid sequence due to the redundancy of the genetic code. For instance, changing ACC to ACA still encodes threonine, leaving the protein function unaffected. This occurs because...
477