Knockout Genes in Bowel Anastomoses: A Systematic Review of Literature Outcomes

Georgios Geropoulos1, Kyriakos Psarras1, Georgios Koimtzis1

  • 12nd Department of Propaedeutic Surgery, Hippokration Hospital, School of Medicine, Aristotle University of Thessaloniki, 54642 Thessaloniki, Greece.

Abstract

Insights

Investigating gene-deficient mice reveals key factors in intestinal healing. Understanding these mechanisms, like interleukin-10 and cyclooxygenase-2, offers insights for improving wound healing therapies.

Area of Science:

  • Gastroenterology
  • Molecular Biology
  • Surgical Research

Background:

  • Intestinal wound healing involves complex, overlapping exudative, proliferative, and remodeling phases.
  • While partially understood, the precise cellular and molecular mechanisms of intestinal healing remain unclear.
  • This review focuses on knockout (KO) models to elucidate these mechanisms in bowel anastomoses.

Purpose of the Study:

  • To systematically review studies utilizing knockout experimental models in bowel anastomoses.
  • To summarize recent findings on intestinal healing mechanisms.
  • To clarify the cellular and molecular processes involved in intestinal repair.

Main Methods:

  • A systematic review protocol was employed.
  • Searches were conducted across Medline, EMBASE, and Scopus databases.
  • Eight studies investigating gene-deficient models were included.

Main Results:

  • Deficiencies in interleukin-10 (IL-10), annexin-A1 (ANXA-1), and thrombin-activatable fibrinolysis inhibitor (TAFI) led to increased inflammatory cell infiltration.
  • Cyclooxygenase-1 (COX-1) deficiency was associated with reduced angiogenesis.
  • Modulating prostaglandin E2 in COX-2 deficient mice and using ANXA1 KO mice with nanoparticles showed potential therapeutic benefits.

Conclusions:

  • Findings highlight the roles of specific genes in intestinal healing.
  • Gene amplification strategies may offer novel therapeutic approaches for improving intestinal wound healing.
  • Further research is needed to fully understand the intricate cellular and micromolecular mechanisms.