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From OpenStax College / Rice University

Production of the Formed Elements Quiz

12 questions biology Grades 9-12

The question sheet

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  1. What is the process of producing blood's formed elements called?

    • Hemopoiesis
    • Cytokinesis
    • Extramedullary flow
    • Rejection
    Reveal answer

    Answer: Hemopoiesis

    Source evidence

    PDF page 756: The lifespan of the formed elements is very brief. Although one type of leukocyte called memory cells can survive for years, most erythrocytes, leukocytes, and platelets normally live only a few hours to a few weeks. Thus, the body must form new blood cells and platelets quickly and continuously. When you donate a unit of blood during a blood drive (approximately 475 mL, or about 1 pint), your body typically replaces the donated plasma within 24 hours, but it takes about 4 to 6 weeks to replace the blood cells. This restricts the frequency with which donors can contribute their blood. The process by which this replacement occurs is called hemopoiesis, or hematopoiesis (from the Greek root haima- = “blood”; -poiesis = “production”).

  2. Where does most hemopoiesis occur after birth?

    • Thymus only
    • Yolk sac
    • Skin
    • Red bone marrow
    Reveal answer

    Answer: Red bone marrow

    Source evidence

    PDF page 756: Prior to birth, hemopoiesis occurs in a number of tissues, beginning with the yolk sac of the developing embryo, and continuing in the fetal liver, spleen, lymphatic tissue, and eventually the red bone marrow. Following birth, most hemopoiesis occurs in the red marrow, a connective tissue within the spaces of spongy (cancellous) bone tissue. In children, hemopoiesis can occur in the medullary cavity of long bones; in adults, the process is largely restricted to the cranial and pelvic bones, the vertebrae, the sternum, and the proximal epiphyses of the femur and humerus. Throughout adulthood, the liver and spleen maintain their ability to generate the formed elements. This process is referred to as extramedullary hemopoiesis (meaning hemopoiesis outside the medullary cavity of adult bones). When a disease such as bone cancer destroys the bone marrow, causing hemopoiesis to fail, extramedullary hemopoiesis may be initiated.

  3. After donating blood, how long does the body typically take to replace blood cells?

    • A few minutes
    • About 4 to 6 weeks
    • One year
    • 24 hours
    Reveal answer

    Answer: About 4 to 6 weeks

    Source evidence

    PDF page 756: The lifespan of the formed elements is very brief. Although one type of leukocyte called memory cells can survive for years, most erythrocytes, leukocytes, and platelets normally live only a few hours to a few weeks. Thus, the body must form new blood cells and platelets quickly and continuously. When you donate a unit of blood during a blood drive (approximately 475 mL, or about 1 pint), your body typically replaces the donated plasma within 24 hours, but it takes about 4 to 6 weeks to replace the blood cells. This restricts the frequency with which donors can contribute their blood. The process by which this replacement occurs is called hemopoiesis, or hematopoiesis (from the Greek root haima- = “blood”; -poiesis = “production”).

  4. All formed elements of blood arise from which cells?

    • Fetal liver cells
    • Epithelial cells
    • Stem cells of red bone marrow
    • Nerve cells
    Reveal answer

    Answer: Stem cells of red bone marrow

    Source evidence

    PDF page 756: All formed elements arise from stem cells of the red bone marrow. Recall that stem cells undergo mitosis plus cytokinesis (cellular division) to give rise to new daughter cells: One of these remains a stem cell and the other differentiates into one of any number of diverse cell types. Stem cells may be viewed as occupying a hierarchal system, with some loss of the ability to diversify at each step. The totipotent stem cell is the zygote, or fertilized egg. The totipotent (toti- = “all”) stem cell gives rise to all cells of the human body. The next level is the pluripotent stem cell, which gives rise to multiple types of cells of the body and some of the supporting fetal membranes. Beneath this level, the mesenchymal cell is a stem cell

  5. Which stem cell is the zygote, giving rise to all body cells?

    • Hemocytoblast
    • Mesenchymal cell
    • Totipotent stem cell
    • Pluripotent stem cell
    Reveal answer

    Answer: Totipotent stem cell

    Source evidence

    PDF page 756: All formed elements arise from stem cells of the red bone marrow. Recall that stem cells undergo mitosis plus cytokinesis (cellular division) to give rise to new daughter cells: One of these remains a stem cell and the other differentiates into one of any number of diverse cell types. Stem cells may be viewed as occupying a hierarchal system, with some loss of the ability to diversify at each step. The totipotent stem cell is the zygote, or fertilized egg. The totipotent (toti- = “all”) stem cell gives rise to all cells of the human body. The next level is the pluripotent stem cell, which gives rise to multiple types of cells of the body and some of the supporting fetal membranes. Beneath this level, the mesenchymal cell is a stem cell

  6. The hemopoietic stem cell is also known as the:

    • Megakaryocyte
    • Hemocytoblast
    • Reticulocyte
    • Fibroblast
    Reveal answer

    Answer: Hemocytoblast

    Source evidence

    PDF page 757: that develops only into types of connective tissue, including fibrous connective tissue, bone, cartilage, and blood, but not epithelium, muscle, and nervous tissue. One step lower on the hierarchy of stem cells is the hemopoietic stem cell, or hemocytoblast. All of the formed elements of blood originate from this specific type of cell. Hemopoiesis begins when the hemopoietic stem cell is exposed to appropriate chemical stimuli collectively called hemopoietic growth factors, which prompt it to divide and differentiate. One daughter cell remains a hemopoietic stem cell, allowing hemopoiesis to continue. The other daughter cell becomes either of two types of more specialized stem cells (Figure 18.4):

  7. Lymphoid stem cells give rise to which class of leukocytes?

    • Platelets
    • Neutrophils
    • Lymphocytes
    • Erythrocytes
    Reveal answer

    Answer: Lymphocytes

    Source evidence

    PDF page 757: • Lymphoid stem cells give rise to a class of leukocytes known as lymphocytes, which include the various T cells,

  8. Myeloid stem cells give rise to all of the following EXCEPT:

    • Megakaryocytes
    • Erythrocytes
    • Lymphocytes
    • Neutrophils
    Reveal answer

    Answer: Lymphocytes

    Source evidence

    PDF page 757: • Myeloid stem cells give rise to all the other formed elements, including the erythrocytes; megakaryocytes that produce

    PDF page 757: platelets; and a myeloblast lineage that gives rise to monocytes and three forms of granular leukocytes: neutrophils, eosinophils, and basophils.

  9. Erythropoietin is secreted by which organ in response to low oxygen?

    • Kidneys
    • Thymus
    • Spleen
    • Liver
    Reveal answer

    Answer: Kidneys

    Source evidence

    PDF page 758: • Erythropoietin (EPO) is a glycoprotein hormone secreted by the interstitial fibroblast cells of the kidneys in response

  10. What does erythropoietin (EPO) prompt the production of?

    • Platelets
    • Monocytes
    • Erythrocytes
    • Lymphocytes
    Reveal answer

    Answer: Erythrocytes

    Source evidence

    PDF page 758: to low oxygen levels. It prompts the production of erythrocytes. Some athletes use synthetic EPO as a performanceenhancing drug (called blood doping) to increase RBC counts and subsequently increase oxygen delivery to tissues throughout the body. EPO is a banned substance in most organized sports, but it is also used medically in the treatment of certain anemia, specifically those triggered by certain types of cancer, and other disorders in which increased erythrocyte counts and oxygen levels are desirable.

  11. Thrombopoietin triggers development of megakaryocytes into what?

    • Neutrophils
    • Platelets
    • Erythrocytes
    • B cells
    Reveal answer

    Answer: Platelets

    Source evidence

    PDF page 758: • Thrombopoietin, another glycoprotein hormone, is produced by the liver and kidneys. It triggers the development of

    PDF page 758: megakaryocytes into platelets.

  12. Illegal blood doping increases oxygen delivery by raising which cells?

    • Red blood cells
    • Platelets
    • Lymphocytes
    • White blood cells
    Reveal answer

    Answer: Red blood cells

    Source evidence

    PDF page 758: In its original intent, the term blood doping was used to describe the practice of injecting by transfusion supplemental RBCs into an individual, typically to enhance performance in a sport. Additional RBCs would deliver more oxygen to the tissues, providing extra aerobic capacity, clinically referred to as VO2 max. The source of the cells was either from the recipient (autologous) or from a donor with compatible blood (homologous). This practice was aided by the well-developed techniques of harvesting, concentrating, and freezing of the RBCs that could be later thawed and injected, yet still retain their functionality. These practices are considered illegal in virtually all sports and run the risk of infection, significantly increasing the viscosity of the blood and the potential for transmission of blood-borne pathogens if the blood was collected from another individual. With the development of synthetic EPO in the 1980s, it became possible to provide additional RBCs by artificially stimulating RBC production in the bone marrow. Originally developed to treat patients suffering from anemia, renal failure, or cancer treatment, large quantities of EPO can be generated by recombinant DNA technology. Synthetic EPO is injected under the skin and can increase hematocrit for many weeks. It may also induce polycythemia and raise hematocrit to 70 or greater. This increased viscosity raises the resistance of the blood and forces the heart to pump more powerfully; in extreme cases, it has resulted in death. Other drugs such as cobalt II chloride have been shown to increase natural EPO gene expression. Blood doping has become problematic in many sports, especially cycling. Lance Armstrong, winner of seven Tour de France and many other cycling titles, was stripped of his victories and admitted to blood doping in 2013.

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