Aberrant splicing of HTT generates the pathogenic exon 1 protein in Huntington disease

Kirupa Sathasivam1, Andreas Neueder, Theresa A Gipson

  • 1Department of Medical and Molecular Genetics, King's College London, London SE1 9RT, United Kingdom.

Insights

Huntington disease (HD) pathogenesis involves aberrant splicing of the HTT gene, producing a toxic exon 1 HTT protein. This discovery offers a mechanistic basis for HD and suggests reviewing current RNA-targeted therapies.

Area of Science:

  • Neurodegenerative diseases
  • Molecular genetics
  • Protein biochemistry

Background:

  • Huntington disease (HD) is an inherited neurodegenerative disorder caused by a CAG repeat expansion in the HTT gene.
  • The huntingtin protein (HTT) fragments, particularly N-terminal ones, are implicated in HD molecular pathogenesis.
  • The precise generation mechanism and length of these pathogenic HTT fragments remain unknown.

Purpose of the Study:

  • To elucidate the mechanism of pathogenic HTT fragment generation in Huntington disease.
  • To investigate the role of aberrant splicing in the production of exon 1 HTT protein.

Main Methods:

  • Analysis of HTT gene splicing in HD models.
  • Detection and characterization of HTT mRNA and protein fragments.
  • Assessment of exon 1 HTT protein pathogenicity in HD mouse models.

Main Results:

  • CAG repeat length-dependent aberrant splicing of HTT exon 1 generates a short, polyadenylated mRNA.
  • This aberrant mRNA is translated into a pathogenic exon 1 HTT protein.
  • Mutant exon 1 HTT proteins are highly pathogenic in HD mouse models.

Conclusions:

  • Aberrant splicing of HTT mRNA provides a mechanistic basis for Huntington disease molecular pathogenesis.
  • The findings highlight the critical role of exon 1 HTT protein in HD.
  • Current RNA-targeted therapies may need re-evaluation as they might not prevent exon 1 HTT production.

Related Concept Videos

Huntington Disease l: Introduction01:21

Huntington Disease l: Introduction

Huntington disease or HD is a progressive, fatal neurodegenerative disorder inherited in an autosomal dominant pattern.PathophysiologyIt is caused by expansion of the CAG trinucleotide repeat in the HTT gene on chromosome 4 (4p16.3), producing an abnormal huntingtin protein with an expanded polyglutamine tract. This misfolded protein disrupts cellular function, leading to neuronal death. Normal alleles have ≤26 repeats, 27–35 are intermediate (risk of expansion), 36–39 show reduced penetrance,...
RNA Splicing01:32

RNA Splicing

Splicing is the process by which eukaryotic RNA is edited before its translation into protein. The RNA strand transcribed from eukaryotic DNA is called the primary transcript. The primary transcripts that become mRNAs are called precursor messenger RNAs (pre-mRNAs). Eukaryotic pre-mRNA contains alternating sequences of exons and introns. Exons are nucleotide sequences that code for proteins, whereas introns are the non-coding regions. In RNA splicing, introns are removed and exons are bonded...
RNA Splicing01:32

RNA Splicing

Splicing is the process by which eukaryotic RNA is edited before its translation into protein. The RNA strand transcribed from eukaryotic DNA is called the primary transcript. The primary transcripts that become mRNAs are called precursor messenger RNAs (pre-mRNAs). Eukaryotic pre-mRNA contains alternating sequences of exons and introns. Exons are nucleotide sequences that code for proteins, whereas introns are the non-coding regions. In RNA splicing, introns are removed and exons are bonded...
Alternative RNA Splicing02:18

Alternative RNA Splicing

Alternative RNA splicing is the regulated splicing of exons and introns to produce different mature mRNAs from a single pre-mRNA. Unlike in constitutive splicing where a single gene produces a single type of mRNA, alternative splicing allows an organism to produce multiple proteins from a single gene and plays an important role in protein diversity.
There are five types of alternative RNA splicing that vary in the ways the pre-mRNA segments are removed or retained in the mature mRNA. The first...
Exon Recombination02:32

Exon Recombination

The evolution of new genes is critical for speciation. Exon recombination, also known as exon shuffling or domain shuffling, is an important means of new gene formation. It is observed across vertebrates, invertebrates, and in some plants such as potatoes and sunflowers. During exon recombination, exons from the same or different genes recombine and produce new exon-intron combinations, which might evolve into new genes. 
Exon shuffling follows “splice frame rules.” Each exon has three reading...
Nonsense-mediated mRNA Decay02:27

Nonsense-mediated mRNA Decay

The Upf proteins that carry out nonsense-mediated decay (NMD) are found in all eukaryotic organisms, including humans. Each protein has an individual role, but they need to work in collaboration. Upf1 is an ATP-dependent RNA helicase that unwinds the RNA helix. Because Upf1 can unwind any RNA, Upf2 and Upf3 are required to help Upf1 discriminate between nonsense and normal mRNAs.
Usually, Upf3 binds to an Exon Junction Complex (EJC) at mRNA splice sites. If a ribosome fully translates the mRNA,...