Therapeutic targeting of mismatch repair proteins in triplet repeat expansion diseases

Paulina Marzec1, Madeleine Richer1, Robert S Lahue2

  • 1LoQus23 Therapeutics Ltd, Cambridge CB22 3AT, United Kingdom.

DNA Repair
|February 26, 2025
PubMed

Insights

Targeting somatic repeat expansions offers a new therapeutic strategy for inherited neurological disorders. Inhibiting key proteins like MSH3, PMS1, MLH3, or modulating FAN1 may delay disease onset and progression.

Area of Science:

  • Neurology
  • Genetics
  • Molecular Biology

Background:

  • Triplet repeat expansion diseases are a class of inherited neurological disorders.
  • Many are debilitating or fatal and difficult to treat.
  • Somatic repeat expansions accelerate disease onset and progression.

Purpose of the Study:

  • To review findings and therapeutic advances in targeting somatic repeat expansions.
  • To explore the potential of inhibiting MSH3, PMS1, MLH3, or modulating FAN1.
  • To highlight the opportunity for multi-disease treatments.

Main Methods:

  • Review of human genetics and model system data.
  • Identification of key proteins involved in somatic repeat expansions.
  • Analysis of therapeutic potential for targeting these proteins.

Main Results:

  • MSH3, PMS1, and MLH3 promote somatic repeat expansions.
  • FAN1 nuclease protects against expansions.
  • Inhibiting these proteins or modulating FAN1 presents a therapeutic opportunity.

Conclusions:

  • Targeting somatic repeat expansions is a promising therapeutic strategy.
  • Multiple proteins (MSH3, PMS1, MLH3, FAN1) are viable therapeutic targets.
  • This approach could lead to treatments for multiple triplet repeat expansion diseases.

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