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lapo4ka [179]
3 years ago
10

A nurse is caring for a client with severe gastritis who vomited a large amount of blood. A lavage is prescribed by the healthca

re provider. Which response does the nurse expect when using a room temperature irrigating solution?
Biology
1 answer:
drek231 [11]3 years ago
8 0

The answer would be: Constriction of blood vessels

Room temperature tends to be colder than the body temperature. A cold water will induce vasoconstriction of the blood vessel that could be beneficial to stop bleeding(if there is any). This will also reduce the pain that caused by the inflammation.
But most research found that the blood flow is not significantly reduced so irrigation using body temperature water might be better.
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A man with blood group A marries a woman with blood group O and their daughter has blood group O. Is this information enough to
galina1969 [7]
From the given information above, the answer would be that type O blood is not dominant. To explain this, all blood types consist of genotypes and these genotypes consist of two letters. For blood type A (A, i) and (A, A); for blood type B (B, i) and (B, B); For blood type AB, there is only one which is (A, B) as well as for O which is (i, i). The capital letters are considered as the dominant whereas, the lowercase letters are recessive. So to conclude, blood type O is a recessive blood type. Going back to the information given, the father is blood type A which is (A, i) whereas the mom has a blood type O (i, i) and the daughter is also blood type O (i, i). Therefore, what the daughter got from his dad is i, and another i from the mother, which makes her having a blood type O.
3 0
4 years ago
WILL MARK BRAINLIEST FOR THE BEST ANSWER - 25 POINTS
kicyunya [14]

Answer:

Explanation:

Steps of cellular respiration

Overview of the steps of cellular respiration.

1. Glycolysis. Six-carbon glucose is converted into two pyruvates (three carbons each). ATP and NADH are made. These reactions take place in the cytosol.

2. Pyruvate oxidation. Pyruvate travels into the mitochondrial matrix and is converted to a two-carbon molecule bound to coenzyme A, called acetyl CoA. Carbon dioxide is released and NADH is made.

3. Citric acid cycle. The acetyl CoA combines with a four-carbon molecule and goes through a cycle of reactions, ultimately regenerating the four-carbon starting molecule. ATP (or, in some cases, GTP), NADH, and FADH_2 are made, and carbon dioxide is released. These reactions take place in the mitochondrial matrix.

4. Oxidative phosphorylation. The NADH and FADH_2 produced in other steps deposit their electrons in the electron transport chain in the inner mitochondrial membrane. As electrons move down the chain, energy is released and used to pump protons out of the matrix and into the intermembrane space, forming a gradient. The protons flow back into the matrix through an enzyme called ATP synthase, making ATP. At the end of the electron transport chain, oxygen accepts electrons and takes up protons to form water.

Overview of the steps of cellular respiration.

Glycolysis. Six-carbon glucose is converted into two pyruvates (three carbons each). ATP and NADH are made. These reactions take place in the cytosol.

Pyruvate oxidation. Pyruvate travels into the mitochondrial matrix and is converted to a two-carbon molecule bound to coenzyme A, called acetyl CoA. Carbon dioxide is released and NADH is made.

Citric acid cycle. The acetyl CoA combines with a four-carbon molecule and goes through a cycle of reactions, ultimately regenerating the four-carbon starting molecule. ATP (or, in some cases, GTP), NADH, and FADH_2 are made, and carbon dioxide is released. These reactions take place in the mitochondrial matrix.

Oxidative phosphorylation. The NADH and FADH_2 produced in other steps deposit their electrons in the electron transport chain in the inner mitochondrial membrane. As electrons move down the chain, energy is released and used to pump protons out of the matrix and into the intermembrane space, forming a gradient. The protons flow back into the matrix through an enzyme called ATP synthase, making ATP. At the end of the electron transport chain, oxygen accepts electrons and takes up protons to form water.

During cellular respiration, a glucose molecule is gradually broken down into carbon dioxide and water. Along the way, some ATP is produced directly in the reactions that transform glucose. Much more ATP, however, is produced later in a process called oxidative phosphorylation. Oxidative phosphorylation is powered by the movement of electrons through the electron transport chain, a series of proteins embedded in the inner membrane of the mitochondrion.

These electrons come originally from glucose and are shuttled to the electron transport chain by electron carriers

NAD

+

NAD

+

start text, N, A, D, end text, start superscript, plus, end superscript and

FAD

FADstart text, F, A, D, end text, which become

NADH

NADHstart text, N, A, D, H, end text and

FADH

2

FADH

2

​

start text, F, A, D, H, end text, start subscript, 2, end subscript when they gain electrons. To be clear, this is what's happening in the diagram above when it says

+

+plus

NADH

NADHstart text, N, A, D, H, end text or

+

+plus

FADH

2

FADH

2

​

start text, F, A, D, H, end text, start subscript, 2, end subscript. The molecule isn't appearing from scratch, it's just being converted to its electron-carrying form:

NAD

+

NAD

+

start text, N, A, D, end text, start superscript, plus, end superscript

+

+plus

2

e

−

2e

−

2, e, start superscript, minus, end superscript

+

+plus

2

H

+

2H

+

2, start text, H, end text, start superscript, plus, end superscript

→

→right arrow

NADH

NADHstart text, N, A, D, H, end text

+

+plus

H

+

H

+

start text, H, end text, start superscript, plus, end superscript

FAD

FADstart text, F, A, D, end text

+

+plus

2

e

−

2e

−

2, e, start superscript, minus, end superscript

+

+plus

2

H

+

2H

+

2, start text, H, end text, start superscript, plus, end superscript

→

→right arrow

FADH

2

FADH

2

​

start text, F, A, D, H, end text, start subscript, 2, end subscript

To see how a glucose molecule is converted into carbon dioxide and how its energy is harvested as ATP and

NADH

NADHstart text, N, A, D, H, end text

/

/slash

FADH

2

FADH

2

​

start text, F, A, D, H, end text, start subscript, 2, end subscript in one of your body's cells, let’s walk step by step through the four stages of cellular respiration.

Glycolysis. In glycolysis, glucose—a six-carbon sugar—undergoes a series of chemical transformations. In the end, it gets converted into two molecules of pyruvate, a three-carbon organic molecule. In these reactions, ATP is made, and

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