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Question 1
Incorrect
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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.
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This question is part of the following fields:
- Basic Sciences
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Question 2
Correct
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Which of the following would not increase the rate of diffusion of a substance across a lipid membrane such as the cell wall?
Your Answer: Thickness of the membrane
Explanation:Diffusion and Fick’s Law
Diffusion is a natural process that occurs when molecules move from an area of high concentration to an area of low concentration. This process is passive and random, meaning that it does not require any external energy input. Fick’s Law states that diffusion occurs more quickly across a large, permeable, and thin membrane. For example, in lung disease, the thickening of the alveolar epithelial barrier can lead to a poor carbon monoxide transfer coefficient because the thicker membrane slows down the diffusion process. the principles of diffusion and Fick’s Law can help us better understand how molecules move and interact in various biological and chemical processes. By optimizing the conditions for diffusion, we can improve the efficiency of many natural and artificial systems.
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This question is part of the following fields:
- Basic Sciences
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Question 3
Correct
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What is the primary factor that increases the risk of thiamine (vitamin B1) deficiency?
Your 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.
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This question is part of the following fields:
- Basic Sciences
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Question 4
Correct
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What type of molecule does haemoglobin belong to?
Your Answer: Quaternary protein structure
Explanation:The Structure and Functions of Proteins
Proteins are complex molecules that can vary in structure from single amino acids to large, folded molecules. Amino acids are joined together by peptide bonds to form dipeptides and polypeptides. More complex molecules can also have disulphide bonds and ionic bonds. The primary structure of a protein is a simple amino acid chain, while the secondary structure is a specific shape such as a helix or pleated sheet. The tertiary structure is a more globular shape, arranged by ionic, hydrogen, and disulphide bonds, and hydrophobic interactions. The quaternary structure is a complex protein containing several polypeptide chains held together by interactions.
Proteins have multiple roles within the human body, including as hormones, food substrates, enzymes, receptor molecules, muscles, cell membrane constituents, carrier molecules in blood, and determinants of oncotic/osmotic pressures. However, proteins can be easily damaged by denaturation, which is the loss of the specific three-dimensional shape of a molecule. Denaturation can be caused by heat, salts, heavy metals, solvents, detergents, and extremes of pH.
In summary, proteins are essential molecules with a diverse range of structures and functions within the human body. their structure and potential for denaturation is crucial for maintaining their proper function.
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This question is part of the following fields:
- Basic Sciences
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Question 5
Correct
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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.
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This question is part of the following fields:
- Basic Sciences
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Question 6
Correct
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What function does vitamin E serve in the body?
Your Answer: Antioxidant
Explanation:Vitamin E and its Functions
Several substances are classified as vitamin E, with alpha-tocopherol being the most common, accounting for 90% of human vitamin E. Alpha-tocopherol is composed of two carbon rings and a long saturated hydrocarbon chain, making it hydrophobic. It has an aromatic ring with an OH- group attached to it. Other substances with vitamin E activity include other tocopherols and tocotrienols, all of which act as antioxidants. Alpha-tocopherol is particularly important in cell membranes, preventing the peroxidation of unsaturated fatty acids by free radicals. It also has other functions, such as regulating gene transcription, inhibiting clotting formation, reducing proliferation of vascular smooth muscle, and playing a role in immunity.
Despite claims that taking vitamin E can reduce the risk of heart disease, cancer, and enhance sexual performance, there is currently no strong evidence to support these claims.
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This question is part of the following fields:
- Basic Sciences
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Question 7
Correct
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A 32-year-old snowboarder presents to the Emergency department complaining of pain and swelling around the first metacarpophalangeal joint (MCP joint) following a fall during practice.
Upon examination, there is significant swelling and bruising on the ulnar side of the joint.
What is the most probable injury that the patient has sustained?Your Answer: Ulnar collateral ligament
Explanation:Skier’s Thumb: A Common Injury in Winter Sports
Skier’s thumb, also known as gamekeeper’s thumb, is a common injury that occurs in winter sports. It is caused by damage or rupture of the ulnar collateral ligament, which is located at the base of the thumb. This injury can result in acute swelling and gross instability of the thumb. In severe cases where a complete tear of the ligament is suspected, an MRI may be necessary to confirm the diagnosis, and surgical repair may be required.
Once the acute swelling has subsided, treatment for skier’s thumb typically involves immobilization in a thumb spica. This is the standard therapy for cases of partial rupture.
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This question is part of the following fields:
- Basic Sciences
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Question 8
Correct
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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: 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.
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This question is part of the following fields:
- Basic Sciences
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Question 9
Incorrect
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In which part of the cell are the electron transport chain carriers situated?
Your Answer: Mitochondria matrix
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.
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This question is part of the following fields:
- Basic Sciences
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Question 10
Incorrect
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A 50-year-old male comes to the clinic complaining of abdominal swelling, nausea, and mild jaundice. He has a history of regular alcohol consumption, drinking two 330ml bottles of lager per day (3% ABV) and a 75cl bottle of 12% ABV wine per week.
What is the approximate number of units of alcohol this man consumes per week? Round to the nearest unit.Your Answer: 13 units
Correct Answer: 23 units
Explanation:Calculating Units of Alcohol
To calculate the number of units of alcohol in a drink, you need to multiply the percentage of alcohol (ABV) by the volume in millilitres and then divide by 1000. However, there are potential pitfalls to watch out for when answering questions about units of alcohol. For example, if the consumption is presented as a daily amount, you need to multiply by 7 to get the weekly amount. Additionally, if the volume is presented in centilitres, you need to convert it to millilitres before performing the calculation.
For instance, let’s say you want to calculate the units of alcohol in a bottle of lager. If the ABV is 3% and the volume is 330ml, the calculation would be 3% x 330ml divided by 1000, which equals 0.99 units rounded up to 1 unit. If the person drinks two bottles a day, that’s 2 units per day or 14 units per week. Similarly, if the person drinks one bottle of wine per week, and the ABV is 12% and the volume is 750ml, the calculation would be 12% x 750ml divided by 1000, which equals 9 units per bottle.
It’s important to be aware of potential pitfalls when calculating units of alcohol, such as checking the units of volume and adjusting for duration. By this simple calculation, you can be prepared for any question that may come up in an exam setting. The UK recommendations for alcohol consumption are no more than 14 units per week for both sexes. While calculating units of alcohol may seem daunting, with practice and preparation, you can confidently tackle any question that comes your way.
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This question is part of the following fields:
- Basic Sciences
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