LINE-1 Activation in Endocrine-Related Cancers: Molecular Mechanisms and Translational Implications

Bruna Sousa Pessoa1, Nathalia Da Roz D'Alessandre2, Gabriela Der Agopian Guardia2

  • 1Developmental Endocrinology Unit, Hormone and Molecular Genetics Laboratory (LIM/42), Endocrinology Division, Internal Medicine Department, Medical School, University of São Paulo (USP), São Paulo, Brazil.

PubMed

Insights

LINE-1 retrotransposons drive endocrine cancers via genomic instability and epigenetic changes. Their reactivation offers potential biomarkers and therapeutic targets for thyroid, adrenal, pituitary, and prostate tumors.

Area of Science:

  • Molecular Biology
  • Genetics
  • Oncology

Background:

  • LINE-1 retrotransposons are implicated in cancer development through genomic instability and epigenetic alterations.
  • Their role in endocrine-related cancers (thyroid, adrenal, pituitary, prostate) is understudied despite observed derepression.

Purpose of the Study:

  • To synthesize the mechanistic consequences of LINE-1 reactivation in endocrine tumors.
  • To explore the link between LINE-1 biology and hormone-dependent tumor behavior.
  • To highlight translational opportunities in LINE-1 biology for endocrine cancers.

Main Methods:

  • Review of existing literature on LINE-1 retrotransposons in tumorigenesis.
  • Focus on mechanisms of LINE-1 reactivation and their impact on DNA damage and signaling pathways.
  • Exploration of LINE-1 encoded proteins (ORF1p, ORF2p) and their functions.

Main Results:

  • LINE-1 hypomethylation and overexpression contribute to DNA damage, copy number alterations, and p53 pathway impairment.
  • ORF1p may co-regulate nuclear hormone receptors, linking retroelements to hormone-driven tumors.
  • ORF1p shows potential as a biomarker for epigenetic instability in endocrine tumors.

Conclusions:

  • LINE-1 derepression is a unifying mechanism in endocrine-related cancers with significant biological and clinical relevance.
  • Targeting LINE-1 retrotransposon life cycle presents therapeutic strategies.
  • ORF1p serves as a potential surrogate biomarker for epigenetic instability.

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