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Published on: September 15, 2018
Defects in cholesterol synthesis genes in mouse and in humans: lessons for drug development and safer treatments
Simon Horvat1, Jim McWhir, Damjana Rozman
1Department of Animal Science, University of Ljubljana, Domzale, Slovenia.
Abstract:
This review describes the mouse knockout models of cholesterol synthesis, together with human malformations and drugs that target cholesterogenic enzymes. Generally, the sooner a gene acts in cholesterol synthesis, the earlier the phenotype occurs. Humans with loss of function of early cholesterogenic enzymes have not yet been described, and in the mouse, loss of Hmgcr is preimplantation lethal. Together, these results indicate that the widely prescribed cholesterol-lowering statins are potentially teratogenic. The Mvk knockout is early embryonic lethal in the mouse, the absence of Fdft1 is lethal at E9.5-12.5 dpc, while the Cyp51 knockouts die at 15.0 dpc. Fungal CYP51 inhibitor azoles are teratogenic in humans, potentially leading to symptoms of Antley-Bixler syndrome. The X-linked mutations in Nsdhl and Ebp are embryonic lethal in male mice, while heterozygous females are also affected. Consequently, the anticancer drugs, tamoxifen and toremifene, inhibiting human EBP, may be harmful in early pregnancy. The Dhcr7 and Dhcr24 knockout mice die shortly after birth, while humans survive with Smith-Lemli-Opitz syndrome or desmosterolosis. Since cholesterol is essential for hedgehog signaling, disturbance of this pathway by antipsychotics and -depressants explains some drug side effects. In conclusion, defects in cholesterol synthesis are generally lethal in mice, while humans with impaired later steps of the pathway can survive with severe malformations. Evidence shows that drugs targeting or, by coincidence, inhibiting human cholesterol synthesis are better avoided in early pregnancy. Since some drugs with teratogenic potential still stay on the market, this should be avoided in new cholesterol-related drug development.
Insights
Cholesterol synthesis defects are often lethal in mice, but humans can survive later defects with malformations. Drugs targeting cholesterol synthesis, like statins, may be teratogenic and should be avoided in early pregnancy.
Area of Science:
- Biochemistry
- Developmental Biology
- Pharmacology
Background:
- Cholesterol is vital for embryonic development.
- Disruptions in cholesterol synthesis pathways can lead to severe developmental defects.
- Mouse models offer insights into human genetic disorders of cholesterol metabolism.
Purpose of the Study:
- To review mouse knockout models of cholesterol synthesis.
- To correlate these models with human malformations and drugs affecting cholesterogenic enzymes.
- To assess the teratogenic potential of drugs impacting cholesterol synthesis.
Main Methods:
- Analysis of existing literature on mouse knockout models for cholesterol synthesis genes.
- Comparison of phenotypes in knockout mice with human genetic disorders.
- Review of drugs known to inhibit cholesterol synthesis enzymes and their known side effects.
Main Results:
- Early acting cholesterol synthesis gene knockouts are lethal in mice (e.g., Hmgcr, Mvk).
- Later acting gene knockouts (e.g., Cyp51, Nsdhl, Ebp, Dhcr7, Dhcr24) result in embryonic lethality or severe malformations.
- Drugs targeting cholesterol synthesis (statins, azoles, tamoxifen, toremifene) show potential teratogenicity in humans, mirroring knockout phenotypes.
Conclusions:
- Defects in early cholesterol synthesis are generally lethal, while later defects cause malformations in humans.
- Drugs inhibiting cholesterol synthesis pathways pose risks during early pregnancy.
- Avoidance of such drugs in early pregnancy and caution in developing new cholesterol-targeting drugs are recommended.
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