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Observations on vitamin K deficiency in the fetus and newborn: has nature made a mistake?
1Department of Medicine, University of Manitoba, Manitoba Institute of Cell Biology, Winnipeg, Canada.
Abstract:
The microsomal mixed function oxidase system metabolizes xenobiotics (Phase I) to products that, if not activated and conjugated for excretion (Phase II), are capable of forming conjugates with cellular macromolecules, including DNA, resulting in toxic, mutagenic, or carcinogenic events. Benzo(a)pyrene (BP), a polycyclic aromatic hydrocarbon, is a model carcinogen for this system. Vitamin K1 (phylloquinone) is a regulator of BP metabolism. These studies demonstrate that K1 is capable of increasing Phase I metabolism and decreasing glutathione transferase activity (Phase II) in chick embryo liver; that deprivation of K1 reduces BP/DNA adducts in mouse liver and reduces tumor formation in mice given intraperitoneal BP; and that K1 supplementation increases BP induced tumor formation in mice. However, epidemiologic studies indicate that children of mothers who smoke during pregnancy may not be at increased risk of cancer. It is known that the placentas from these pregnancies exhibit markedly increased levels of arylhydrocarbon hydroxylase induced by the polycyclic aromatic hydrocarbons in tobacco smoke, but there is no corresponding increase in this enzyme activity in the fetus in such pregnancies. We suggest that the low vitamin K level is a secondary protective mechanism for xenobiotics, such as BP, that may escape the primary placental screen. The recently described role of vitamin K-dependent Gla protein as ligands for receptor tyrosine kinases, also establishes K as a link in cell growth and transformation. It is proposed that the small total body pool of K1 in the adult, which is sufficient only to meet continuing needs, and the even smaller pool in the fetus are protective. This protective effect of low K1 levels is particularly important in the presence of the high mitotic rates and rapid cell turnover in the avian embryo and mammalian fetus.
Insights
Vitamin K1 influences the metabolism of carcinogens like benzo(a)pyrene. Low vitamin K1 levels may offer protection against cancer by reducing toxic DNA adducts, especially in developing fetuses.
Area of Science:
- Biochemistry
- Toxicology
- Carcinogenesis
Background:
- The body metabolizes xenobiotics via Phase I and Phase II enzyme systems.
- Benzo(a)pyrene (BP) is a model carcinogen metabolized by these systems.
- Vitamin K1 (phylloquinone) is known to regulate BP metabolism.
Purpose of the Study:
- To investigate the role of Vitamin K1 in benzo(a)pyrene metabolism and carcinogenicity.
- To explore the protective potential of low Vitamin K1 levels against xenobiotic-induced toxicity.
Main Methods:
- Assessing Phase I and Phase II enzyme activities in chick embryo liver.
- Measuring BP/DNA adducts and tumor formation in mice with varying Vitamin K1 levels.
- Analyzing epidemiological data on maternal smoking and childhood cancer risk.
Main Results:
- Vitamin K1 increased Phase I metabolism and decreased Phase II activity in chick embryos.
- Vitamin K1 deprivation reduced BP/DNA adducts and tumor formation in mice.
- Vitamin K1 supplementation increased BP-induced tumor formation in mice.
- Epidemiological data suggests low fetal Vitamin K1 may be protective against maternal smoking-related cancers.
Conclusions:
- Vitamin K1 plays a dual role in xenobiotic metabolism, potentially promoting carcinogenicity at higher levels.
- Low Vitamin K1 levels may act as a secondary protective mechanism against carcinogens like BP.
- The small body pool of Vitamin K1 in fetuses might be protective due to high cell turnover rates.