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  • Question 1 - In scientific experimentation, what is the term used to describe the movement of...

    Incorrect

    • In scientific experimentation, what is the term used to describe the movement of charged particles or solutes in a liquid medium due to an electric field?

      Your Answer: Mass spectrometry

      Correct Answer: Electrophoresis

      Explanation:

      Electrophoresis: Separating Molecules Based on Charge and Mass

      Electrophoresis is a technique that separates solutes, molecules, or nucleic acids based on their mass and charge. It involves the migration of charged particles in a liquid medium under the influence of an electric field. The apparatus consists of two electrodes placed at either end of a support medium, or gel, which is suspended in a buffer solution. The sample is inserted into a well and a current is applied. Over time, positively charged solutes move towards the negative electrode, while negatively charged substances move towards the positive electrode. Once the migration is complete, the gel is removed and stained to color the substance being tested for, such as protein.

      This technique is widely used in medical testing, but it requires a higher degree of operational and interpretive skill than many other tests, which is why it often takes longer to get a result. Electrophoresis has various uses and adaptations, such as standard electrophoresis for protein detection in the diagnosis of myeloma, identification of unusual lipid fractions in patients with inherited diseases, and detection of viral DNA through Southern Blotting. There is also Northern blotting, primarily a research technique at present, which uses electrophoresis to separate RNA. Additionally, Western blotting is used to test for the presence of antibodies to DNA through protein separation.

    • This question is part of the following fields:

      • Basic Sciences
      19.7
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  • Question 2 - What is the conversion of pyruvate before it enters the Krebs cycle? ...

    Correct

    • What is the conversion of pyruvate before it enters the Krebs cycle?

      Your Answer: Acetyl-CoA

      Explanation:

      The Krebs cycle occurs in the mitochondrion and involves the conversion of acetyl-CoA to oxaloacetate. This cycle produces six NADH, two FADH, and two ATP for each molecule of glucose. Pyruvate is converted to acetyl-CoA before entering the Krebs cycle, and water and carbon dioxide are end products. Acetic acid itself has no role in the cycle, but its acetyl group is used to form acetyl-CoA. Some anaerobic bacteria can convert sugars to acetic acid directly.

    • This question is part of the following fields:

      • Basic Sciences
      17.9
      Seconds
  • Question 3 - What is the final product of glycolysis besides ATP? ...

    Correct

    • What is the final product of glycolysis besides ATP?

      Your Answer: Pyruvate

      Explanation:

      Glycolysis: The Energy-Producing Reaction

      Glycolysis is a crucial energy-producing reaction that converts glucose into pyruvate while releasing energy to create ATP and NADH+. It is one of the three major carbohydrate reactions, along with the citric acid cycle and the electron transport chain. The reaction involves ten enzymatic steps that provide entry points to glycolysis, allowing for a variety of starting points. The most common starting point is glucose or glycogen, which produces glucose-6-phosphate.

      Glycolysis occurs in two phases: the preparatory (or investment) phase and the pay-off phase. In the preparatory phase, ATP is consumed to start the reaction, while in the pay-off phase, ATP is produced. Glycolysis can be either aerobic or anaerobic, but it does not require nor consume oxygen.

      Although other molecules are involved in glycolysis at some stage, none of them form its end product. Lactic acid is associated with anaerobic glycolysis. glycolysis is essential for how the body produces energy from carbohydrates.

    • This question is part of the following fields:

      • Basic Sciences
      21.1
      Seconds
  • Question 4 - The Krebs or TCA cycle is a series of metabolic processes beginning with...

    Correct

    • The Krebs or TCA cycle is a series of metabolic processes beginning with the synthesis of citrate from acetyl-CoA which results in a number of important metabolic products. Where in the cell does this cycle occur?

      Your Answer: Mitochondria

      Explanation:

      Cellular Processes and Organelles

      Metabolic processes in the cell occur in specific locations. Acetyl-CoA production and the Krebs cycle take place in the mitochondrium, while glycolysis occurs in the cytoplasm. The nucleus is the central structure of the cell that contains DNA and is double membrane-bound. The rough endoplasmic reticulum is responsible for packaging and transporting proteins, while the smooth endoplasmic reticulum performs a similar function but lacks ribosomes.

      It is important to understand where these processes occur in the cell to better understand their functions and how they contribute to the overall functioning of the cell. The mitochondrium is responsible for producing energy in the form of ATP, while the cytoplasm is where glucose is broken down during glycolysis. The nucleus is where genetic information is stored and replicated, and the endoplasmic reticulum is involved in protein synthesis and transport.

      In summary, the cell is a complex system with various organelles that perform specific functions. where these processes occur in the cell is crucial to how they contribute to the overall functioning of the cell.

    • This question is part of the following fields:

      • Basic Sciences
      23.7
      Seconds
  • Question 5 - What stage of cellular respiration is responsible for the production of pyruvic acid?...

    Incorrect

    • What stage of cellular respiration is responsible for the production of pyruvic acid?

      Your Answer: Oxidative phosphorylation

      Correct Answer: Glycolysis

      Explanation:

      The Versatility of Pyruvic Acid in Cellular Metabolism

      Pyruvic acid is a simple alpha-keto acid that plays a crucial role in several metabolic pathways within the cell. It serves as a central intersection where different pathways converge and diverge. One of the primary ways pyruvic acid is produced is through glycolysis, where glucose is broken down into pyruvic acid. Depending on the cell’s needs, pyruvic acid can be converted back into glucose through gluconeogenesis or used to synthesize fatty acids through the acetyl-CoA pathway. Additionally, pyruvic acid can be used to produce the amino acid alanine.

      Pyruvic acid is also involved in respiration, where it enters the Krebs cycle under aerobic conditions. This cycle produces energy in the form of ATP, which is used by the cell for various functions. Under anaerobic conditions, pyruvic acid can ferment into lactic acid, which is used by some organisms as a source of energy.

      In summary, pyruvic acid is a versatile molecule that plays a critical role in cellular metabolism. Its ability to be converted into different molecules depending on the cell’s needs makes it an essential component of many metabolic pathways.

    • This question is part of the following fields:

      • Basic Sciences
      31.1
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  • Question 6 - To what type of cell can mesenchymal stem cells transform? ...

    Incorrect

    • To what type of cell can mesenchymal stem cells transform?

      Your Answer: Skin cells

      Correct Answer: Osteoblasts

      Explanation:

      Mesenchymal Cells: The Stem Cells of the Human Skeleton

      Mesenchymal cells are the primary stem cells of the human skeleton. These multipotent cells originate in the bone marrow and have the ability to differentiate into various cell types. Osteoblasts, responsible for bone formation, chondrocytes, which give rise to cartilage, and adipocytes, specialized in storing energy as fat, are some of the cells that mesenchymal cells can produce. Muscle cells, or myocytes, arise from muscle satellite cells, while skin cells come from epithelial stem cells. Neurons mostly arise from neural stem cells, although some may come from astrocytes. White blood cells, on the other hand, come from hematopoietic stem cells. Mesenchymal cells play a crucial role in the maintenance and repair of the human skeleton, making them an essential area of study in regenerative medicine.

    • This question is part of the following fields:

      • Basic Sciences
      16.1
      Seconds
  • Question 7 - What occurs in eukaryotic prometaphase? ...

    Incorrect

    • What occurs in eukaryotic prometaphase?

      Your Answer: The chromosomes align across a plane

      Correct Answer: The nuclear membrane and the nucleoli disintegrate and kinetochores appear

      Explanation:

      The Significance of Prometaphase in Cell Division

      Prometaphase is a crucial phase in cell division that marks the transition from prophase to metaphase. Although it is often considered as a part of these two phases, it has distinct events that make it an individual phase. During prometaphase, the nuclear membrane disintegrates, and the nucleoli are no longer visible. Additionally, each chromosome forms two kinetochores near the centromere, which serve as attachment points for spindle fibers. These fibers connect to the opposite poles of the cell, forming travelling lines that will separate the sister chromatids during anaphase.

      Prophase is characterized by chromatin condensation, while DNA and centrosome duplication occur during interphase. Chromosome alignment takes place during metaphase, and the sister chromatids separate during anaphase. Prometaphase, therefore, plays a crucial role in preparing the chromosomes for separation during anaphase. Its distinct events make it an essential phase in cell division, and its proper execution is necessary for successful cell division.

    • This question is part of the following fields:

      • Basic Sciences
      57.4
      Seconds
  • Question 8 - What is the primary role of the nuclear membrane? ...

    Correct

    • What is the primary role of the nuclear membrane?

      Your Answer: To regulate transport of molecules in and out of the nucleus

      Explanation:

      The Role of the Nucleus and Nuclear Envelope in Cell Function

      The nucleus is a crucial component of eukaryotic cells, serving as the control centre for the cell. It is characterised by a membrane-enclosed structure that contains the cell’s chromosomes and is heavily involved in regulating gene transcription and protein synthesis. The nuclear envelope, which consists of an outer and inner membrane, plays a critical role in regulating the movement of molecules in and out of the nucleus. This is achieved through nuclear pores on the surface of the envelope, which allow the passage of water-soluble molecules. While the incorrect answer options describe minor roles of the nuclear envelope, its primary function is to act as a regulatory barrier for anything that enters or exits the nucleus. Overall, the nucleus and nuclear envelope are essential components of cell function, playing a critical role in regulating gene expression and maintaining cellular homeostasis.

    • This question is part of the following fields:

      • Basic Sciences
      10.9
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  • Question 9 - What occurs during metaphase II of meiosis? ...

    Correct

    • What occurs during metaphase II of meiosis?

      Your Answer: The cell's chromosomes attach to the meiotic spindle to divide into chromatids

      Explanation:

      The Process of Meiosis

      Meiosis is a complex process that involves two major cycles. The first cycle, meiosis I, condenses the reproductive cell’s DNA into chromosomes that are then replicated, creating two pairs of each original chromosome. These pairs are then separated, and the cell divides with one chromosome in each daughter cell. The second cycle, meiosis II, splits the chromosomes into individual chromatids, which are then separated as in meiosis I. This separation is facilitated by a spindle, a set of parallel fibers that attach to the center of each chromosome and split into two, making the chromatids travel on the polar opposite sides of the cell. The cell then divides again, giving rise to four haploid daughter cells.

      During meiosis II, the chromosomes align on the spindle in metaphase II. Tetrads separate during anaphase I and line up during metaphase I. Sister chromatids separate on the meiotic spindle during anaphase II. Finally, chromosomes uncoil and lengthen at the end of meiosis, in telophase II. This process is essential for the production of gametes and the continuation of sexual reproduction in many organisms.

    • This question is part of the following fields:

      • Basic Sciences
      144.4
      Seconds
  • Question 10 - What is the end result of meiosis in a cell? ...

    Correct

    • What is the end result of meiosis in a cell?

      Your Answer: 4 haploid cells

      Explanation:

      Meiosis

      Meiosis is a crucial process that occurs in the genetic cells of eukaryotic organisms. Its primary purpose is to recombine genes, which results in genetic variation while also ensuring genetic preservation. Although meiosis shares some similarities with mitosis, it is restricted to genetic cells, also known as gametes, of eukaryotic organisms.

      During meiosis, a gamete duplicates each of its chromosomes and divides into two diploid cells. These cells then divide into four haploid cells by the end of the second stage of meiosis (telophase II and cytokinesis). These haploid cells are either sperm cells (male) or eggs (female) in mammals. When these haploid cells fuse together, they produce a diploid zygote that contains two copies of parental genes.

      In summary, meiosis is a crucial process that ensures genetic variation and preservation in eukaryotic organisms. It involves the duplication and division of genetic cells into haploid cells, which can then fuse together to produce a diploid zygote.

    • This question is part of the following fields:

      • Basic Sciences
      8.2
      Seconds

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Basic Sciences (6/10) 60%
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