Nucleotides that contain the sugar ribose are found in which of the following?
DNA.
ATP.
RNA.
GMP.
Correct Answer : C
RNA
Reasoning
To determine which molecule contains ribose sugar, we need to understand the difference between ribose and deoxyribose, the two main sugars found in nucleotides:
Key Differences:
- Ribose: Found in RNA, ATP, and GMP. It has a hydroxyl group (–OH) on the 2' carbon of the sugar.
- Deoxyribose: Found in DNA. It lacks the –OH on the 2' carbon (hence "de-oxy").
Let’s examine each choice:
1. DNA (Deoxyribonucleic Acid)
- Contains deoxyribose, not ribose.
Incorrect.
2. ATP (Adenosine Triphosphate)
- Although ATP does contain ribose, its primary function is as an energy molecule, not a structural component of nucleic acids.
- While technically true, ATP is not the best answer in this context, because the question implies a nucleic acid context. Technically correct, but not the best answer for "nucleotide in nucleic acid."
3. RNA (Ribonucleic Acid)
- Contains ribose sugar in its nucleotide backbone.
Correct Answer.
4. GMP (Guanosine Monophosphate)
- Also contains ribose. However, like ATP, it is not specifically a nucleic acid (RNA or DNA), but rather a nucleotide on its own. Correct chemically, but not the best answer in terms of the structural nucleotide within a nucleic acid.
RNA is the correct answer because its nucleotides inherently contain ribose and it is the nucleic acid built from ribose-containing nucleotides. While ATP and GMP do contain ribose, RNA is the most direct and complete answer to the question.
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Related Questions
Correct Answer is C
Explanation
Solid
Reasoning:
The volume a substance occupies depends on its state of matter, with gases typically taking up the most space and solids the least. Carbon dioxide can exist in several states—gas (CO₂), liquid (under pressure), or solid ("dry ice")—depending on temperature and pressure.
- States of Carbon Dioxide & Volume:
- Gas: In this state, CO₂ molecules are far apart and move freely, so they occupy the largest volume.
- Liquid: Requires high pressure and low temperature. Molecules are closer together, so the volume is smaller than gas.
- Solid (Dry Ice): Molecules are packed tightly in a fixed structure, so it occupies the least volume.
- Plasma: Not relevant for normal CO₂ behavior; plasma refers to an ionized gas state, not typical for CO₂ in natural conditions.
- Why Option 3 is Correct:
- In the solid state, carbon dioxide has minimal kinetic energy, and its molecules are tightly packed, resulting in the least volume among all options.
- Dry Ice (Solid CO₂):
In its solid form, carbon dioxide molecules are packed tightly in a rigid crystalline lattice, making it the densest state of CO₂.
- Density Comparison:
- Solid CO₂: ~1.6 g/cm³
- Liquid CO₂: ~1.0 g/cm³
- Gaseous CO₂ at STP: ~0.0018 g/cm³
- Volume by Mass:
- 1 kg of CO₂ gas occupies approximately 560 liters
- 1 kg of liquid CO₂ occupies approximately 1 liter
- 1 kg of solid CO₂ occupies approximately 0.6 liters
3. Why the Other Options Are Incorrect
- 1. Plasma:
Plasma is an ionized gas that exists only under extreme conditions (e.g., high energy in labs or stars). It occupies a greater volume than solids or liquids and is not a natural state for CO₂ on Earth. - 2. Liquid:
Liquid CO₂ is more compressed than gas but still less dense than solid CO₂. - 4. Gas:
Gaseous CO₂ has the lowest density because its molecules are spread far apart, occupying the most space.
4. Real-World Applications
- Dry Ice for Storage and Transport:
Solid CO₂ (dry ice) is ideal for refrigeration and shipping due to its high density and ability to sublimate directly into gas, avoiding liquid messes. - Carbon Capture and Storage (CCS):
In environmental technologies, captured CO₂ is often compressed into liquid or solid form to reduce storage volume and space required.
Correct Answer is A
Explanation
Urea
Reasoning:
When proteins are broken down in the body, a waste product called ammonia is formed. Since ammonia is toxic, the body converts it into urea, a less harmful substance. Urea is then eliminated from the body primarily by the kidneys through urine, but also in small amounts by sweat glands.
Here’s how it works:
- Protein Catabolism
- Proteins → Amino acids → Ammonia (NH₃)
- Ammonia is highly toxic to cells and must be removed quickly.
- Urea Formation
- In the liver, ammonia is converted into urea via the urea cycle.
- Excretion via Sweat
- While the kidneys are the main organs responsible for filtering urea into urine, the sweat glands in the skin also excrete a small amount of urea.
- This is why sweat can have a slightly ammonia-like odor during intense exercise or in people with kidney problems.
- Other Options Explained:
- Water: Also excreted in sweat, but not a direct byproduct of protein breakdown.
- Sebum: An oily secretion from sebaceous glands, unrelated to nitrogen waste.
- Lysozymes: Enzymes that kill bacteria, present in sweat but not related to protein catabolism.
Urea is the nitrogenous waste product excreted in small amounts by sweat glands after proteins are broken down and ammonia is formed. This helps the body safely eliminate excess nitrogen
Correct Answer is C
Explanation
Achondroplasia is caused by a mutation in a single autosomal gene (not on sex chromosomes), and it is inherited in a dominant pattern. This means:
- A person needs only one copy of the mutant gene to show the disorder.
- Individuals with two copies of the mutant gene (AA) typically do not survive infancy (lethal homozygosity).
- Therefore, an adult living with achondroplasia must have one normal allele (a) and one mutant allele (A) — this is the heterozygous genotype Aa.
Explanation:
Genotypes Explained:
- aa – Normal height individual (no mutation).
- AA – Homozygous dominant; results in severe skeletal malformations and is typically fatal shortly after birth.
- Aa – Heterozygous; the individual has achondroplasia and can live into adulthood.
- XAY – A sex-linked genotype indicating a male with a mutation on the X chromosome; not applicable here since achondroplasia is autosomal, not sex-linked.
Autosomal Dominant Inheritance in Achondroplasia:
- Each child of an Aa parent has:
- A 50% chance of being Aa (having achondroplasia),
- A 50% chance of being aa (not having the condition),
- If both parents are Aa, there's a 25% chance of AA (lethal).
Clinical Note:
- People with achondroplasia typically have shortened limbs, normal-sized torsos, and characteristic facial features.
- Intelligence and life expectancy are typically normal, provided there are no severe complications.
Correct Answer is D
Explanation
Yersinia pestis
Reasoning:
Yersinia pestis is the bacterium responsible for plague, including the bubonic plague. Its primary mode of transmission is through bites from fleas, particularly rat fleas (Xenopsylla cheopis) that have fed on infected rodents.
- Pathogen Overview – Yersinia pestis:
- Gram-negative bacterium.
- Causes bubonic, septicemic, and pneumonic plague.
- Historically associated with pandemics such as the Black Death.
- Transmission Mechanism:
- Fleas ingest the bacteria by biting infected rodents.
- The bacteria multiply in the flea's gut, eventually blocking it.
- When the flea bites a human, it regurgitates infected material into the bite wound.
- Human infection then spreads from the bite site, typically to lymph nodes.
Why the Other Options Are Incorrect:
- 1. Corynebacterium diphtheriae
- Causes diphtheria.
- Transmitted via respiratory droplets, not fleas.
- 2. Neisseria meningitidis
- Causes bacterial meningitis.
- Spread by saliva and respiratory secretions.
- 3. Plasmodium falciparum
- Causes the most severe form of malaria.
- Transmitted by female Anopheles mosquitoes, not fleas or rats.
Correct Answer is C
Explanation
A stem cell maturing to become a muscle cell that can contract.
Reasoning:
Cell differentiation is the biological process by which a less specialized cell (like a stem cell) becomes a more specialized cell type with a specific structure and function, such as a muscle cell, nerve cell, or blood cell.
- What Is Cell Differentiation?
- In multicellular organisms, stem cells give rise to different cell types during development or tissue repair.
- Differentiation involves gene expression changes that lead to specialized structures and functions.
- Why Option C Is Correct:
- A stem cell becoming a muscle cell is a classic example of differentiation.
- This transformation enables the cell to contract, a function unique to muscle cells.
- Why Other Options Are Incorrect:
- 1. Muscle cell producing more ATP is an example of cellular metabolism, not differentiation.
- 2. A pancreatic cell releasing hormones reflects normal cell function, not a change in cell type.
- 3. A mutation in a stomach cell is a genetic change, possibly harmful, but it is not differentiation.
Key Examples of Differentiation:
- Embryonic Development:
During early development, pluripotent stem cells (from the embryo) have the ability to become any cell type in the body. As development progresses, these stem cells differentiate into specialized cells such as:- Neurons: Specialized for transmitting electrical signals in the brain and nervous system.
- Blood cells: Including red blood cells (which carry oxygen) and white blood cells (which fight infection).
- Cardiomyocytes: Heart muscle cells that contract to pump blood.
- Adult Tissues (Somatic Differentiation):
In fully developed organisms, certain tissues still contain multipotent stem cells that can replenish specific cell types. A key example:- Hematopoietic Stem Cells (HSCs): Found in bone marrow, these stem cells differentiate into various blood cells, including:
- Red blood cells (erythrocytes): Carry oxygen.
- White blood cells (leukocytes): Defend against pathogens.
- Platelets (thrombocytes): Help in blood clotting.
- Hematopoietic Stem Cells (HSCs): Found in bone marrow, these stem cells differentiate into various blood cells, including:
Correct Answer is B
Explanation
Sebaceous
Reasoning: The sebaceous glands are specialized exocrine glands in the skin that secrete an oily substance called sebum. This sebum plays a vital role in lubricating and waterproofing both the hair and the skin, keeping them soft, flexible, and protected from drying out or cracking.
Location: Found all over the body, except the palms and soles, but aremost concentratedon the face and scalp.
Function: Producesebum, an oily substance that:
- Lubricates hair and skin to prevent dryness.
- Forms a protective barrier against microbes.
- Helps waterproof the skin.
Associated with hair follicles: Sebum is secreted into hair follicles, coating both the hair and skin surface.
Why the other options are wrong.
1. Sudoriferous glands→ Producesweat, not oil. Their primary function is thermoregulation, not lubrication. Includes:
- Eccrine glands(4): Widespread; secrete watery sweat for thermoregulation.
- Apocrine glands(3): Found in armpits/groin; secrete thicker sweat (odor-producing when broken down by bacteria). They release a thicker secretion during stress or hormonal changes but do not produce sebum.
3. Apocrine glands→ A type of sweat gland (not oil-producing).
4. Eccrine glands→ Produce sweat for cooling (no role in lubrication).
Clinical Relevance
- Acne: Caused by overactive sebaceous glands clogged with excess sebum and dead skin cells.
- Seborrheic dermatitis: Flaky skin (dandruff) due to inflammation of sebum-rich areas.
Correct Answer is C
Explanation
Hydrogen ions (H⁺) released from carbonic acid neutralize hydroxide ions (OH⁻) to resist change in blood pH.
Reasoning
The carbonic acid–bicarbonate buffer system is the body’s primary mechanism for maintaining blood pH around 7.4. When an alkaline substance like hydroxide ions (OH⁻) enters the bloodstream, this buffer system helps resist changes in pH by neutralizing the excess base.
1. Buffer System Overview:
The buffer relies on the following equilibrium:
CO2+H2O↔H2CO3↔HCO3−+H+
- Carbonic acid (H₂CO₃): a weak acid that can release H⁺.
- Bicarbonate (HCO₃⁻): a weak base that can accept H⁺.
2. Response to an Alkaline Input (OH⁻):
- Problem: OH⁻ increases pH by binding to free hydrogen ions:
OH−+H+→H2O
- Buffer Solution: The buffer system shifts to produce more H⁺. To restore balance, carbonic acid dissociates:
H2CO3→HCO3−+H+
This newly released H⁺ neutralizes the OH⁻, preventing the rise in pH.
- Final Step: Carbonic acid can also break down into carbon dioxide (CO₂) and water:
H2CO3→CO2+H2O
The CO₂ is then exhaled by the lungs, helping regulate the buffer system.
3. Why the Other Options Are Incorrect:
- 1 & 2: Incorrectly suggest that bicarbonate releases OH⁻. In reality, bicarbonate accepts H⁺, acting as a weak base.
- 4: Misstates the purpose of the buffer. It doesn’t aim to raise pH, but rather to maintain a stable pH by neutralizing either excess acid or base.
Points to Remember:
- H⁺ ions from carbonic acid neutralize incoming OH⁻, preventing alkalosis.
- Lungs help by removing CO₂ (driving the equilibrium left).
- Kidneys fine-tune pH by excreting or reabsorbing bicarbonate (HCO₃⁻).
Correct Answer is A
Explanation
DNA is composed of two complementary strands arranged in an antiparallel fashion, meaning one strand runs 5' to 3', and the other runs 3' to 5'. The bases pair according to base-pairing rules:
- A (adenine) pairs with T (thymine)
- G (guanine) pairs with C (cytosine)
RNA uses uracil (U) instead of thymine, but since this question pertains to DNA, T is used, not U.
Step-by-Step Complementation:
Given DNA strand:
5' AGCTAGCGT 3'
Complement base by base (using A↔T and C↔G):
Use the base pairing rules:
A → T
G → C
C → G
T → A
Step-by-Step Pairing:
| Original (5'→3') | A | G | C | T | A | G | C | G | T |
| Complementary (3'→5') | T | C | G | A | T | C | G | C | A |
Thus, the complementary strand is:3' TCGATCGCA 5'
Why the Other Options Are Wrong:
2.Incorrect: Matches the original strand (no complementarity).
3.Incorrect: Uses "U" (uracil, found in RNA) and has typos ("UTCGCU").
4.Incorrect: Uses "U" (RNA) and has the wrong directionality (5'→3' instead of 3'→5').
Correct Answer is B
Explanation
The integumentary system includes the skin, hair, nails, sweat glands, and sebaceous (oil) glands. One of its important components is the subcutaneous layer (hypodermis), which lies beneath the dermis. This layer contains adipose tissue (fat cells) that serves several functions, including:
- Energy storage
- Thermal insulation
- Cushioning to protect underlying organs
Why the Other Options Are Incorrect:
- A. Production of antibodies:
This is a function of the immune system, specifically B cells (a type of white blood cell). - C. Release of minerals:
This is primarily a function of the skeletal system, especially during bone remodeling where calcium and phosphate are released into the bloodstream. - D. Absorption of water:
The skin acts as a barrier to water, preventing dehydration. It is not responsible for absorbing water—most water absorption occurs in the intestines.
Clinical & Nursing Relevance of the Integumentary System
Role of the Hypodermis (Subcutaneous Fat Layer):
- Acts as a cushion to protect internal organs.
- Provides insulation to help regulate body temperature.
- Serves as an energy reserve through fat storage.
- Clinical Note:
- Obesity leads to excess subcutaneous fat.
- Cachexia (wasting syndrome) results in noticeable fat loss in this layer.
Essential Integumentary Functions to Monitor in Patients:
- Thermoregulation
- Monitored through sweating and changes in blood vessel size (vasodilation/constriction).
- Protection
- Acts as a barrier against pathogens, UV radiation, and physical trauma.
- Sensation
- Contains sensory receptors that detect touch, pain, pressure, and temperature.
- Vitamin D Production
- Skin uses sunlight to convert cholesterol into vitamin D, important for calcium metabolism.
Fun fact:
The skin is the largest organ in the human body—making up about 16% of total body weight!
AN IMAGE OF THE INTEGUMENTARY SYSTEM
Correct Answer is A
Explanation
The tires will not be able to roll or stop.
Reasoning:
Friction is essential for tires to grip the road surface, allowing the car to accelerate, decelerate (brake), and change direction. Without friction, there is no force to oppose or control motion between the tires and the road.
- Role of Friction in Tire Function:
- Rolling Motion: Friction between the tire and the road allows the wheel to push backward and move the vehicle forward (Newton’s Third Law).
- Stopping: Brakes rely on friction to stop the rotation of the wheels. Without friction between the tires and the road, braking would be ineffective.
- Turning: Turning requires lateral friction; without it, the car would skid uncontrollably in a straight line.
- Why Other Options Are Incorrect:
- 2. Tread wearing down quickly: This happens with friction, not without it. Friction-free tires would experience no wear due to lack of contact resistance.
- 3. Tires levitating: Friction doesn’t affect gravity. Tires wouldn’t float; they’d just slide freely.
- 4. Tires detaching: Friction is not what keeps tires attached to the car — lug nuts and axles do.
3. Real-World Analogy: Driving on Ice
Driving on icy roads simulates what would happen with friction-free tires:
- The wheels may spin, but the car won’t gain traction or move forward effectively.
- Braking becomes ineffective, as there’s insufficient friction to stop the vehicle.
This demonstrates the crucial role friction plays in vehicle control.
4. Relevant Physics Principle: Newton’s First Law
According to Newton’s First Law of Motion, an object will remain at rest or continue in uniform motion unless acted upon by an external force.
- In driving, friction between the tires and the road is that force—it allows the car to start, stop, and steer.
Without friction, the car would slide uncontrollably, unable to change its state of motion.
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