-
Question 1
Incorrect
-
What factor causes a shift of the oxygen dissociation curve to the left?
Your Answer: Increased CO2
Correct Answer: Increased pH
Explanation:The Oxygen Dissociation Curve and its Effects on Oxygen Saturation
The oxygen dissociation curve is a graph that compares the oxygen saturation of hemoglobin (Hb) at different partial pressures of oxygen. When more oxygen is needed by the tissues, the curve shifts to the right. This means that at the same partial pressure of oxygen, less oxygen is bound to Hb, allowing it to be released to the tissues. This effect is caused by increased levels of CO2 and temperature, which assist in the transfer of oxygen to more metabolically active tissues. Additionally, increased levels of 2,3-DPG also aid in this process.
On the other hand, a left shift in the curve reflects conditions where there is less need for oxygen in the tissues, such as in the lungs. This allows for increased binding of oxygen to Hb, allowing it to be taken up before transport to the tissues that require it. Overall, the oxygen dissociation curve plays a crucial role in regulating oxygen saturation in the body and ensuring that oxygen is delivered to the tissues that need it most.
-
This question is part of the following fields:
- Basic Sciences
-
-
Question 2
Incorrect
-
What is the cause of the symptoms of weakness, dermatitis, diarrhoea and dementia in pellagra?
Your Answer: Genetic disease affecting haemoglobin
Correct Answer: Deficiency of the vitamin niacin
Explanation:Niacin Deficiency and Other Genetic Diseases
Niacin, a vitamin present in two forms – nicotinamide and nicotinic acid, is found in a variety of plant and animal foodstuffs. However, in some cases, the form of the vitamin is not easily absorbed by the human body, leading to deficiency. This deficiency is common in areas where maize is the primary dietary carbohydrate. Additionally, niacin can be produced by the body from the amino acid tryptophan. Diseases that affect the availability of tryptophan, such as Hartnup disease and carcinoid syndrome, can also result in niacin deficiency.
Pellagra is a condition that arises from niacin deficiency. It initially presents with non-specific symptoms such as nausea, fatigue, and reduced appetite, followed by pigmented dermatitis in sun-exposed areas, gastrointestinal disturbance, mood disturbance, and dementia in severe cases.
Apart from niacin deficiency, genetic diseases affecting collagen synthesis, such as Ehlers Danlos, present with symptoms of fragile stretchy skin and joint hypermobility. Genetic diseases affecting haemoglobin, such as sickle cell anaemia, present with symptoms of pain, hepatosplenomegaly, shortness of breath, and anaemia. Deficiencies in B12 and folate can also lead to macrocytic anaemia, paresthesia, and lethargy.
In conclusion, the causes and symptoms of niacin deficiency and other genetic diseases is crucial for early diagnosis and effective treatment. A balanced diet and regular medical check-ups can help prevent and manage these conditions.
-
This question is part of the following fields:
- Basic Sciences
-
-
Question 3
Incorrect
-
A premature baby is born and the anaesthetists are struggling to ventilate the lungs because of insufficient surfactant. How does Laplace's law explain the force pushing inwards on the walls of the alveolus caused by surface tension between two static fluids, such as air and water in the alveolus?
Your Answer: Directly proportional to the radius of the alveolus
Correct Answer: Inversely proportional to the radius of the alveolus
Explanation:The Relationship between Alveolar Size and Surface Tension in Respiratory Physiology
In respiratory physiology, the alveolus is often represented as a perfect sphere to apply Laplace’s law. According to this law, there is an inverse relationship between the size of the alveolus and the surface tension. This means that smaller alveoli experience greater force than larger alveoli for a given surface tension, causing them to collapse first. This phenomenon is similar to what happens when two balloons of different sizes are attached together, with the smaller balloon emptying into the larger one.
In the lungs, this collapse of smaller alveoli can lead to atelectasis and collapse if surfactant is not present. Surfactant is a substance that reduces surface tension, making it easier to expand the alveoli and preventing smaller alveoli from collapsing. this relationship between alveolar size and surface tension is crucial in respiratory physiology, as it helps explain the importance of surfactant in maintaining proper lung function.
-
This question is part of the following fields:
- Basic Sciences
-
-
Question 4
Correct
-
The arrangement of amphipathic phospholipids in the mammalian cell membrane, what is it like?
Your Answer: A lipid bilayer with hydrophilic heads facing out and hydrophobic tails facing in
Explanation:The Function and Structure of the Mammalian Cell Membrane
The mammalian cell membrane serves as a protective barrier that separates the cytoplasm from the extracellular environment. It also acts as a filter for molecules that move across it. Unlike plant and prokaryotic cells, mammalian cells do not have a cell wall. The main component of the cell membrane is a bilayer of amphipathic lipids, which have a hydrophilic head and a hydrophobic tail. The phospholipids in the bilayer are oriented with their hydrophilic heads facing outward and their hydrophobic tails facing inward. This arrangement allows for the separation of the watery extracellular environment from the watery intracellular compartment.
It is important to note that the cell membrane is not a monolayer and the phospholipids are not linked head-to-tail. This is in contrast to DNA, which has a helical chain formation. Overall, the structure and function of the mammalian cell membrane are crucial for maintaining the integrity and proper functioning of the cell.
-
This question is part of the following fields:
- Basic Sciences
-
-
Question 5
Incorrect
-
What occurs during metaphase II of meiosis?
Your Answer: Tetrads attach to the meiotic spindle to divide into chromosomes
Correct 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
-
-
Question 6
Incorrect
-
What controls the specific stages of the cell cycle?
Your Answer: The complexing of cyclases with cyclins at the end of the G1 phase
Correct Answer: Cyclins and cyclin-dependent kinases
Explanation:Regulation of the Cell Cycle by Cyclins and Cyclin-Dependent Kinases
The cell cycle is controlled by the activity of proteins known as cyclins and phosphorylating enzymes called cyclin-dependent kinases (CDKs). Cyclins and CDKs combine to form an activated heterodimer, where cyclins act as the regulatory subunits and CDKs act as the catalytic subunits. Neither of these molecules is active on their own. When a cyclin binds to a CDK, the CDK phosphorylates other target proteins, either activating or deactivating them. This coordination leads to the entry into the next phase of the cell cycle. The specific proteins that are activated depend on the different combinations of cyclin-CDK. Additionally, CDKs are always present in cells, while cyclins are produced at specific points in the cell cycle in response to other signaling pathways.
In summary, the cell cycle is regulated by the interaction between cyclins and CDKs. This interaction leads to the phosphorylation of target proteins, which ultimately controls the progression of the cell cycle.
-
This question is part of the following fields:
- Basic Sciences
-
-
Question 7
Incorrect
-
Of which cellular structure is the fibrillar centre a component?
Your Answer: The mitochondria
Correct Answer: The nucleolus
Explanation:The Fibrillar Centre in the Nucleolus
The fibrillar centre is a crucial component of the nucleolus, which is found in most metazoan nucleoli, particularly in higher eukaryotes. Along with the dense fibrillar components and the granular component, it forms the three major components of the nucleolus. During the end of mitosis, the fibrillar centre serves as a storage point for nucleolar ribosomal chromatin and associated ribonucleoprotein transcripts. As the nucleolus becomes active, the ribosomal chromatin and ribonucleoprotein transcripts begin to form the dense fibrillar components, which are more peripherally located and surround the fibrillar centres. The transcription zone for multiple copies of the pre-rRNA genes is the border between these two structures. It is important to note that the fibrillar centre is not a component of any of the cell structures mentioned in the incorrect answer options.
-
This question is part of the following fields:
- Basic Sciences
-
-
Question 8
Incorrect
-
In which part of the cell are the electron transport chain carriers situated?
Your Answer: Cytoplasm
Correct Answer: Mitochondrial cristae
Explanation:The Electron Transport Chain in Mitochondria
The electron transport chain (ETC) is a crucial process in cellular aerobic respiration that occurs in the mitochondrial cristae. These are folded membranes inside the organelle. During respiration, NADH and FADH produced from other parts of the process, such as glycolysis, transfer electrons from electron donors to electron acceptors through redox reactions. This electron transfer is coupled with proton transfer across the mitochondrial membrane, creating an electrochemical proton gradient. This gradient induces the production of ATP, which is used as an energy currency by the cell.
ATP is produced through a mechanism called chemiosmotic phosphorylation. The structure of the mitochondrion is essential for this process to occur. The cristae provide a large surface area for the ETC to take place, and the mitochondrial membrane is impermeable to protons, allowing for the creation of the proton gradient. The inner membrane also contains ATP synthase, the enzyme responsible for producing ATP through chemiosmotic phosphorylation.
In summary, the electron transport chain in mitochondria is a complex process that involves the transfer of electrons and protons across the mitochondrial membrane to create a proton gradient. This gradient is then used to produce ATP through chemiosmotic phosphorylation. The structure of the mitochondrion is crucial for this process to occur efficiently.
-
This question is part of the following fields:
- Basic Sciences
-
-
Question 9
Incorrect
-
What is the composition of enzymes found in lysosomes?
Your Answer: Peroxidases
Correct Answer: Acid hydrolases
Explanation:Lysosomes: The Digestive System of the Cell
Lysosomes are organelles that come from the Golgi apparatus and are enclosed by a membrane. They are responsible for breaking down various biological macromolecules such as proteins, nucleic acids, carbohydrates, and lipids. Lysosomes contain acid hydrolases, which are enzymes that cleave chemical bonds by adding water and function at an acidic pH of around 5. They are involved in digesting foreign agents that are internalized by the cell and breaking down other cellular organelles like mitochondria, allowing for their components to be recycled.
The acidic pH within lysosomes is maintained by a proton pump in the lysosomal membrane, which imports protons from the cytosol coupled to ATP hydrolysis. This acidic environment is necessary for the activity of the acid hydrolases. D-amino acid oxidases and peroxidases are not found in lysosomes but in peroxisomes. Alcohol dehydrogenases and ATPases are not involved in digestion but in other cellular functions. Alcohol dehydrogenases catalyze the interconversion between alcohols and aldehydes or ketones with the reduction of NAD+ to NADH, while ATPases catalyze the breakdown of ATP into ADP and a phosphate ion, releasing energy for the cell’s functions.
-
This question is part of the following fields:
- Basic Sciences
-
-
Question 10
Correct
-
A couple in their late 30s come to the clinic seeking information about the risk of their three children inheriting Huntington's disease. The husband has recently been diagnosed with the disease, while the wife is not affected. What is the likelihood, expressed as a percentage, that their children will inherit the disease?
Your Answer: 50%
Explanation:Huntington’s Disease
Huntington’s disease is a genetic disorder that typically appears later in life and is characterized by symptoms such as chorea, cognitive decline, and personality changes. It is an autosomal dominant disease, meaning that there is a 50% chance of passing it on to offspring. If the gene is inherited from an unaffected parent, the child will not be affected. This is different from autosomal recessive inheritance, where both parents must pass on the gene for it to affect their children.
The disease is caused by an increase in the length of a repeating trinucleotide sequence (CAG) in the Huntington protein. This sequence can change in length through generations, and longer sequences are associated with earlier onset of symptoms (genetic anticipation). Since Huntington’s disease usually presents itself after people have already started their families, there are many issues associated with genetic testing.
-
This question is part of the following fields:
- Basic Sciences
-
-
Question 11
Correct
-
At what stage of eukaryotic mitosis do the centromeres of chromosomes separate?
Your Answer: Anaphase
Explanation:Chromosome Division during Anaphase
Chromosomes are joined together in an X shape at the centromere. During anaphase, the centromeres break down and the chromosomes divide into two identical pairs called sister chromatids. These sister chromatids then move to opposite sides of the cell along a network of spindle fibres. When the cell divides during telophase, each daughter cell receives one sister chromatid from the parent cell. This ensures the accurate copying and propagation of genes. The process of chromosome division during anaphase is crucial for the proper distribution of genetic material in cells.
-
This question is part of the following fields:
- Basic Sciences
-
-
Question 12
Incorrect
-
What are the clinical effects that can occur due to acute or chronic over-administration of multivitamins leading to Vitamin A toxicity?
Your Answer: Improved fertility
Correct Answer: Nausea, vomiting and headaches
Explanation:The Importance and Risks of Vitamin A
Vitamin A is an essential nutrient that plays a crucial role in various bodily functions such as growth and development, vision, enzyme signalling pathways, and the maintenance of epithelial membranes. However, excessive intake of vitamin A can lead to toxicity, which can cause several adverse effects. These include raised intracranial pressure resulting in headaches, nausea, vomiting, and visual loss, increased bone resorption leading to osteoporosis and hypercalcaemia, liver damage, hair loss, and skin changes. Moreover, there is a possible increased risk of malignancy, particularly among smokers. Pregnant women are also advised to avoid foods rich in vitamin A, such as liver and fish oils, due to the teratogenicity of vitamin A-derived drugs. Therefore, it is crucial to maintain a balanced intake of vitamin A to avoid the risks associated with its toxicity.
-
This question is part of the following fields:
- Basic Sciences
-
-
Question 13
Correct
-
What is the primary role of the nucleus in a eukaryotic cell?
Your Answer: To regulate gene transcription and translation
Explanation:The Nucleus: Control Centre of the Cell
The nucleus is the control centre of the cell, responsible for regulating gene transcription from DNA into mRNA and from mRNA into peptide/protein synthesis. Eukaryotic cells have a membrane-enclosed organised nucleus, while prokaryotic cells lack this structure. The nuclear structure consists of an outer and inner nuclear membrane that form the nuclear envelope, which has nuclear pores allowing the movement of water-soluble molecules. Inside the nucleus is the nucleoplasm containing the nuclear lamina, a dense fibrillar network that acts as a skeleton and regulates DNA replication and cell division. The nucleus also contains nucleoli, structures involved in the formation of ribosomes responsible for mRNA translation.
Although the incorrect answer options above describe processes in which the nucleus is involved, none of them constitutes its main function within the cell.
-
This question is part of the following fields:
- Basic Sciences
-
-
Question 14
Incorrect
-
A 65-year-old patient with suspected spinal cord compression has been admitted to the neurosurgical team for an urgent MRI of the spine. Which particle's magnetic properties does magnetic resonance imaging rely predominantly upon?
Your Answer: Electron
Correct Answer: Hydrogen ion (proton)
Explanation:How MRI Scanners Use Hydrogen Ions to Create Images
MRI scanners use the magnetic properties of hydrogen ions, also known as protons, to create images of the human body. These protons have nuclear spin, which means they have magnetic vectors that can be aligned in an electromagnet. The scanner bombards the protons with radiofrequency radiation, causing them to release energy when they return to their resting state. This energy release is recorded and used to construct the MRI image.
While other nuclei, such as carbon 13, also have nuclear spin and could be used in MRI imaging, hydrogen ions are much more abundant in human tissues. This makes them the preferred choice for creating images of the body. The process of aligning the magnetic vectors of the protons and then recording their energy release is repeated many times to create a detailed image of the body’s internal structures.
Overall, MRI scanners use the magnetic properties of hydrogen ions to create detailed images of the human body. This non-invasive imaging technique has revolutionized medical diagnosis and treatment, allowing doctors to see inside the body without the need for surgery.
-
This question is part of the following fields:
- Basic Sciences
-
-
Question 15
Incorrect
-
What is the primary factor that increases the risk of thiamine (vitamin B1) deficiency?
Your Answer: Vegetarians
Correct Answer: Chronic alcohol excess
Explanation:Thiamine: Its Roles, Sources, Deficiency States, and Manifestations
Thiamine is a vital nutrient that plays several roles in the body. It acts as a cofactor to enzymes involved in energy production, metabolism of branched chain amino acids, and regulation of nerve and muscle action potentials. It is found in many foods, including wheat, oats, and yeast-containing products. However, deficiency states can occur in chronic alcohol dependence, renal dialysis, and cultures that mainly consume white rice. The deficiency can manifest as ‘dry’ beriberi, which causes peripheral neuropathy, muscle weakness, fatigue, and reduced concentration, or ‘wet’ beriberi, which also involves heart failure and edema. In severe cases, Wernicke-Korsakoff syndrome can develop, which is an emergency requiring urgent IV replacement of thiamine. If left untreated, it can lead to irreversible amnesia, confabulation, and dementia. Therefore, all patients with alcohol-related admissions should be considered for Pabrinex, a B vitamin infusion.
-
This question is part of the following fields:
- Basic Sciences
-
-
Question 16
Incorrect
-
What is the fundamental meaning of carbohydrate?
Your Answer: A compound containing carbon, hydrogen and oxygen in any proportion.
Correct Answer: A compound following the formula Cx(H2O)y
Explanation:Carbohydrates: Building Blocks of Energy and Storage
Carbohydrates are organic compounds made up of carbon, hydrogen, and oxygen, with a general formula of Cx(H2O)y. They can be classified as either aldehydes or ketones and contain multiple hydroxyl groups. Monosaccharides are the simplest form of carbohydrates, consisting of a single unit. They are categorized based on the number of carbon atoms they contain, with trioses having three, pentoses having five, and hexoses having six carbon atoms. These monosaccharides are essential for energy production and building larger carbohydrate structures.
Disaccharides are formed when two monosaccharides are joined together through a condensation reaction, releasing a water molecule. The most common disaccharides are lactose, maltose, and sucrose. Polysaccharides, on the other hand, are long, branched polymers made up of multiple single units. They serve as convenient storage molecules for energy reserves, such as glycogen in humans and starch in plants.
In summary, carbohydrates are vital building blocks for energy production and storage in living organisms. Monosaccharides, disaccharides, and polysaccharides all play important roles in maintaining the body’s energy balance and overall health.
-
This question is part of the following fields:
- Basic Sciences
-
-
Question 17
Correct
-
A 10-year-old patient presents with recurrent skin cancer and is diagnosed with xeroderma pigmentosum. What is the defective biochemical mechanism in this disease?
Your Answer: DNA excision repair
Explanation:Xeroderma Pigmentosum and DNA Repair
Deoxyribonucleic acid (DNA) found in the skin cells can absorb ultraviolet (UV) light, which can cause the formation of pyrimidine dimers. These dimers are removed through a process called excision repair, where the damaged DNA is cut out and replaced with new DNA. However, if this process fails, it can lead to mutations in genes that suppress tumors or promote their growth, potentially leading to cancer.
Xeroderma pigmentosum is a genetic disorder that is inherited in an autosomal recessive pattern. This means that an individual must inherit two copies of the mutated gene, one from each parent, to develop the disorder. Generally, disorders that affect metabolism or DNA replication on a cellular or genetic level are inherited in an autosomal recessive pattern. On the other hand, genetic disorders that affect larger structural components are usually inherited in an autosomal dominant pattern. While there are exceptions to these rules, they can serve as a helpful guide for exam preparation.
-
This question is part of the following fields:
- Basic Sciences
-
-
Question 18
Incorrect
-
Which statement regarding microtubules is accurate in relation to Chédiak-Higashi syndrome?
Your Answer: They consist of alpha tubulin subunits only
Correct Answer: They are arranged in a 9+2 formation in cilia
Explanation:Microtubules and Chédiak-Higashi Syndrome
Microtubules are made up of alpha and beta tubulin dimers that are arranged in a helix and can be added or removed to change the length. They are found in structures such as flagella, mitotic spindles, and cilia, where they have a 9+2 arrangement. These structures are important for cell movement and division. Chemotherapy agents, such as taxanes, target microtubules and are used in breast cancer treatment.
Chédiak-Higashi syndrome is a rare inherited immunodeficiency disorder caused by mutations in the LYST gene. This condition is characterized by neutrophil inclusions, albinism, recurrent infections, and peripheral neuropathy. The neutrophil inclusions are thought to be caused by abnormal microtubule function, which affects the immune system’s ability to fight infections. While there is no cure for Chédiak-Higashi syndrome, treatment focuses on managing symptoms and preventing infections.
-
This question is part of the following fields:
- Basic Sciences
-
-
Question 19
Incorrect
-
What is the primary means of transportation for vitamin D in the human body?
Your Answer: In lymph, bound to albumin
Correct Answer: In blood, bound to the group specific component
Explanation:The Role of UV Light and Vitamin D in Calcium and Phosphate Regulation
In order for the body to produce Vitamin D3, UV light at a specific wavelength is required to convert cholesterol in the skin. Vitamin D2 and D3 are then transported in the bloodstream bound to the Vitamin-D Binding Protein and undergo further modifications in the liver and kidney to become the active form, 1,25 (OH)2Vitamin D. This active form plays a crucial role in regulating calcium and phosphate concentrations in the body.
1,25 (OH)2Vitamin D increases calcium absorption in the duodenum and inhibits the secretion and synthesis of PTH, which helps to maintain calcium concentrations. It also increases phosphate absorption in the jejunum and ileum, which is important for maintaining phosphate concentrations. Additionally, 1,25 (OH)2Vitamin D promotes bone turnover by stimulating both osteoblast and osteoclast activity.
Overall, the production and activation of Vitamin D through UV light and dietary sources is essential for proper calcium and phosphate regulation in the body.
-
This question is part of the following fields:
- Basic Sciences
-
-
Question 20
Incorrect
-
During which phase of aerobic respiration is FADH2 generated?
Your Answer: Oxidative phosphorylation
Correct Answer: Krebs cycle
Explanation:The Krebs Cycle and the Role of FADH2
The Krebs cycle is a crucial part of aerobic respiration in cells. It involves a series of reactions that convert acetate, derived from carbohydrates, fats, and proteins, into carbon dioxide and energy in the form of ATP. Additionally, the Krebs cycle produces precursors for some amino acids and reducing agents like NADH and FADH2 that are involved in other metabolic pathways.
FAD is a redox cofactor that plays a vital role in the Krebs cycle. It receives two electrons from the sixth reaction of the cycle, where succinate dehydrogenase converts succinate into fumarate by removing two hydrogen atoms and attaching them onto FAD. This process results in FAD gaining two electrons and reducing into FADH2.
FADH2 then donates the electrons to the electron transport chain, which is another part of cellular respiration. This mechanism helps compensate for the relatively low amount of ATP produced by the Krebs cycle (2.5 molecules of ATP per turn) compared to the electron transport chain (26-28 molecules of ATP). Overall, the Krebs cycle and the role of FADH2 are essential for generating energy in cells.
-
This question is part of the following fields:
- Basic Sciences
-
00
Correct
00
Incorrect
00
:
00
:
0
00
Session Time
00
:
00
Average Question Time (
Secs)