Protein kinases of the Hippo pathway: regulation and substrates

Joseph Avruch1, Dawang Zhou, Julien Fitamant

  • 1Department of Molecular Biology, Massachusetts General Hospital, Boston, MA 02114, USA. avruch@molbio.mgh.harvard.edu

Insights

The Hippo signaling pathway regulates cell proliferation and survival. Key components like Hippo and Lats kinases control the Yorkie (YAP) transcriptional coactivator, impacting cell growth and development across species.

Area of Science:

  • Cell Biology
  • Molecular Biology
  • Developmental Biology

Background:

  • The Hippo signaling pathway is a critical regulator of cell proliferation, survival, and organ size in metazoans.
  • It functions as a kinase cascade that inhibits the transcriptional coactivator Yorkie (YAP).
  • The core components include Hippo (Mst1/2 in mammals), Mats/Mob1, Salvador (Sav1), and Lats (Lats1/2).

Purpose of the Study:

  • To review the structure and regulation of the Hippo signaling pathway.
  • To summarize knowledge on Hippo/Mst1&2 kinases, their binding partners (Salvador, Rassf), and substrates (Warts/Lats1&2, Trc/ndr1&2, Mats/Mob1, FOXO).
  • To highlight conserved and divergent aspects of Hippo pathway regulation across species.

Main Methods:

  • The review synthesizes findings from genetic and biochemical studies.
  • Comparative analysis across model organisms like Drosophila, yeast, and mammals.
  • Focus on molecular interactions and regulatory mechanisms.

Main Results:

  • The Hippo pathway, conserved from yeast to mammals, controls YAP activity through a kinase cascade.
  • Dysregulation of the Hippo pathway (e.g., loss of Mst1/2) leads to hyperproliferation and tumorigenesis, often mediated by YAP.
  • Diversification in pathway components and regulation exists, with examples in skin and lymphoid cells showing YAP-independent functions.

Conclusions:

  • The Hippo pathway is a fundamental regulator of cell growth and organ development with conserved core components but significant species-specific adaptations.
  • Understanding its intricate regulation is crucial for insights into development, regeneration, and cancer.
  • Further research into pathway diversification and YAP-independent functions will broaden our comprehension of its biological roles.

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