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  2. Tyrosinemia - Wikipedia

    en.wikipedia.org/wiki/Tyrosinemia

    Type I tyrosinemia can be detected via blood tests for the presence of a fumarylacetoacetate metabolite, succinylacetone, which is considered a pathognomonic indicator for the disease. [ 6 ] Type II tyrosinemia can be detected via the presence of significantly elevated plasma tyrosine levels, and the diagnosis can be confirmed by detection of a ...

  3. Tyrosinemia type I - Wikipedia

    en.wikipedia.org/wiki/Tyrosinemia_type_I

    Tyrosinemia type I has an autosomal recessive pattern of inheritance. Tyrosinemia type I is an autosomal recessive inherited condition. Mutant alleles in the gene are inherited from both parents. The genetic mutation occurs to the fumarylacetoacetate hydrolase (FAH) enzyme gene, located on chromosome 15.

  4. Tyrosinemia type II - Wikipedia

    en.wikipedia.org/wiki/Tyrosinemia_type_II

    Type II tyrosinemia is caused by a deficiency of the enzyme tyrosine aminotransferase (EC 2.6.1.5), encoded by the gene TAT.Tyrosine aminotransferase is the first in a series of five enzymes that converts tyrosine to smaller molecules, which are excreted by the kidneys or used in reactions that produce energy.

  5. Coronary ischemia - Wikipedia

    en.wikipedia.org/wiki/Coronary_ischemia

    If blood flow through the coronary arteries is stopped completely, cardiac muscle cells may die, known as a myocardial infarction, or heart attack. [9] Coronary artery disease (CAD) is the most common cause of coronary ischemia. [7] Coronary ischemia and coronary artery disease are contributors to the development of heart failure over time. [10]

  6. Autoregulation - Wikipedia

    en.wikipedia.org/wiki/Autoregulation

    Since the heart is a very aerobic organ, needing oxygen for the efficient production of ATP & Creatine Phosphate from fatty acids (and to a smaller extent, glucose & very little lactate), the coronary circulation is auto regulated so that the heart receives the right flow of blood & hence sufficient supply of oxygen.

  7. Biofluid dynamics - Wikipedia

    en.wikipedia.org/wiki/Biofluid_dynamics

    The Heart, arteries, and veins (a network of tubes to carry blood) constitute the cardiovascular system or circulatory system of our body which transports the blood throughout the body. The heart can be thought of as a muscular pump, consisting of four chambers, and pulsatile muscles which pump and circulates the blood through the vasculature.

  8. Venous return - Wikipedia

    en.wikipedia.org/wiki/Venous_return

    Venous return (VR) is the flow of blood back to the heart. Under steady-state conditions, venous return must equal cardiac output (Q), when averaged over time because the cardiovascular system is essentially a closed loop. Otherwise, blood would accumulate in either the systemic or pulmonary circulations.

  9. Cardiac physiology - Wikipedia

    en.wikipedia.org/wiki/Cardiac_physiology

    Cardiac physiology or heart function is the study of healthy, unimpaired function of the heart: involving blood flow; myocardium structure; the electrical conduction system of the heart; the cardiac cycle and cardiac output and how these interact and depend on one another.