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 D
Explanation
The valence of an atom refers to the number of valence electrons, which are the electrons in the outermost energy level and are responsible for chemical bonding.
In the periodic table, elements in the same group (vertical column) share similar chemical properties because they have the same number of valence electrons.
Explanation:
- For example, Group 1 (alkali metals like lithium, sodium, and potassium) all have 1 valence electron, so their valence remains constant throughout the group.
- Group 17 (halogens like fluorine, chlorine, and bromine) all have 7 valence electrons.
- While atomic size, reactivity, and electronegativity may change down a group, the valence does not.
Clinical Relevance
Why Valence Matters in the Body:
- Valence is the number of electrons an atom uses to bond. It helps predict how elements behave in the body and how they interact with medications.
Common Ions & Their Roles:
- Sodium (Na) & Potassium (K) – Group 1 → +1 charge
Crucial for nerve signals and fluid balance. - Calcium (Ca) & Magnesium (Mg) – Group 2 → +2 charge
Needed for strong bones, muscle contractions, and heart function. - Oxygen (O) & Sulfur (S) – Group 16 → -2 charge
Important for energy production and protein structure.
Medication Examples:
- Lithium (Group 1, +1) – Used to treat bipolar disorder by interacting with brain cells based on its charge.
- Antacids – Often contain Mg²⁺ or Al³⁺ to neutralize stomach acid. Their valence determines how they work.
Memory Tip:
“Groups share valence, periods change it.”
Atoms in the same vertical column (group) behave similarly because they have the same number of valence electrons.
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 D
Explanation
Skeletal muscle cells are highly active and require a large amount of energy to support continuous and powerful contractions. Mitochondria are the "powerhouses" of the cell, producing ATP (adenosine triphosphate) through cellular respiration, which fuels muscle activity.
Explanation:
- Mitochondria(4): Abundant in skeletal muscle cells to meet high energy demands, especially during exercise or repetitive movements. The more active the muscle, the more mitochondria it contains.
- Lysosomes (1): Help break down waste but are not especially concentrated in muscle tissue.
- Centrioles (2): Involved in cell division, which is not a primary function of mature skeletal muscle cells (they are typically multinucleated and non-dividing).
- Golgi Bodies (3): Package and modify proteins, important in general cell function but not uniquely enriched in muscle cells compared to mitochondria.
Clinical Insight:
Conditions like mitochondrial myopathies involve defective mitochondria and can lead to muscle weakness and fatigue, highlighting the importance of mitochondrial health in skeletal muscle function.
Exercise & Mitochondria
- Endurance training increases mitochondrial density, enhancing muscle efficiency.
Mitochondrial Diseases
- Mitochondrial defects can lead to muscle weakness, fatigue, and exercise intolerance (e.g., mitochondrial myopathy).
Implications for Patient Care
- Monitor fatigue levels in patients with mitochondrial disorders.
- Educate patients on the benefits of aerobic exercise to support mitochondrial health.
Fun Fact:
- Cardiac muscle contains even more mitochondria than skeletal muscle—because the heart never rests!
Correct Answer is D
Explanation
Pancreas
Reasoning:
The pancreas plays a crucial role in digestion by releasing digestive enzymes and sodium bicarbonate (NaHCO₃) into the duodenum (the first section of the small intestine). Sodium bicarbonate helps neutralize the acidic chyme that enters the small intestine from the stomach.
- Function of Sodium Bicarbonate:
- The chyme from the stomach is highly acidic due to gastric hydrochloric acid (HCl).
- The pancreas releases sodium bicarbonate to buffer this acid, raising the pH and creating a more alkaline environment ideal for enzyme activity in the small intestine.
- Role of the Pancreas:
- Part of both the endocrine and exocrine systems.
- Exocrine function includes secreting:
- Digestive enzymes (lipase, amylase, proteases).
- Sodium bicarbonate via the pancreatic duct into the duodenum.
Why the Other Options Are Incorrect:
- 1. Liver:
- Produces bile, which helps emulsify fats but does not release sodium bicarbonate.
- 2. Appendix:
- A small, vestigial organ with no known role in digestion or pH regulation.
- 3. Gallbladder:
- Stores and concentrates bile made by the liver, but does not produce sodium bicarbonate.
Mechanism of pH Regulation in the Small Intestine:
- Stomach Acid (HCl):
The chyme entering the small intestine from the stomach is highly acidic due to hydrochloric acid. - Pancreatic Bicarbonate (NaHCO₃):
The pancreas secretes sodium bicarbonate, which neutralizes the acid through the following reaction:
NaHCO₃+HCl→NaCl+H₂CO₃
- Carbonic Acid (H₂CO₃):
This intermediate breaks down into carbon dioxide (CO₂) and water (H₂O):
H₂CO₃→CO₂+H₂O
The CO₂ is exhaled via the lungs, and the water remains in the intestinal tract, helping to protect the intestinal lining from acid damage.
Clinical Relevance:
- Pancreatic Insufficiency:
A decrease in bicarbonate and enzyme secretion (e.g., in chronic pancreatitis) can result in acidic intestinal contents and nutrient malabsorption. - Cystic Fibrosis:
Thick mucus obstructs pancreatic ducts, impairing bicarbonate delivery and enzyme flow into the small intestine, leading to digestive complications.
Correct Answer is C
Explanation
Plasma
Explanation:
To determine whether solutes from an orally taken drug formulation enter the bloodstream, the plasma is the most appropriate sample to analyze.
Why Plasma?
- Plasma is the liquid component of blood that carries nutrients, hormones, waste products, and dissolved substances, including drugs.
- It makes up about 55% of total blood volume and is easily separated for testing.
- Measuring solute levels in plasma can show whether the drug has been absorbed through the digestive system and entered systemic circulation.
Why the Other Options Are Incorrect:
- 1. Bone marrow: Produces blood cells; not involved in initial drug absorption or general circulation.
- 2. White blood cells: Part of the immune system; not useful for detecting drug solutes unless they specifically accumulate there.
- 4. Lymph: Drains interstitial fluid and may carry some absorbed fats, but not the main route for drug solutes entering the bloodstream.
3. Important Factors in Drug Testing
- Bioavailability: Refers to the proportion of the drug that successfully enters the bloodstream and becomes available for therapeutic action. It is typically measured by analyzing drug levels in plasma.
- Peak Plasma Concentration: Indicates the time at which the drug reaches its highest concentration in the bloodstream, which varies based on the drug’s formulation and route of administration.
- Half-Life: Describes how long the drug stays in the plasma before its concentration is reduced by half, helping to predict how long the drug remains active in the body.
4. Clinical Significance
- Therapeutic Drug Monitoring (TDM): Involves measuring drug levels in plasma to ensure the concentration remains within a safe and effective range (especially important for drugs with narrow therapeutic windows, such as anticonvulsants or antibiotics).
- Pharmacokinetics: Plasma concentration data help determine optimal dosing frequency, ensuring consistent therapeutic effects while avoiding toxicity.
Correct Answer is B
Explanation
What Is Adhesion?
Adhesion is a property of water where water molecules are attracted to and stick to other substances—especially those with polar or charged surfaces, like glass, plant tissues, or metal. This occurs because water is a polar molecule, meaning it has a slightly positive end and a slightly negative end, which allows it to form hydrogen bonds with other polar surfaces.
Why 2 is Correct:
Raindrops stick to the outside of a window.
- When it rains, water molecules cling to the glass surface of the window.
- This happens because of adhesion—the attraction between the water molecules and the glass (a polar surface).
- It’s a classic example of how water interacts with other materials in the environment.
Why the Other Choices Are Incorrect:
1. Small water droplets cling together to make one large water droplet
- This demonstrates cohesion, not adhesion.
- Cohesion is when water molecules stick to each other, due to hydrogen bonding between water molecules.
3. Water molecules support the weight of a small insect
- This shows surface tension, which is a result of cohesion at the water's surface.
- Water molecules at the surface are tightly bonded together, forming a sort of “skin” that can support light objects (like a water strider).
4. Water and oil separate into two distinct layers
- This is due to differences in polarity, not adhesion.
- Water is polar, oil is nonpolar—they do not mix because there’s no attraction between them.
|
TERM |
DEFINITION |
EXAMPLE |
|
Adhesion |
Water sticks to other substances |
Raindrops sticking to a window |
|
Cohesion |
Water sticks to itself |
Water droplets merging |
|
Surface tension |
Water resists breaking at the surface |
Insects walking on water |
|
polarity |
Water doesn’t mix with nonpolar substances (like oil). |
Water and oil forming separate layers |
Correct Answer is D
Explanation
Fallopian tubes
Reasoning:
Fertilization in humans typically occurs in the fallopian tubes, also known as uterine tubes or oviducts. These are the narrow tubes that connect the ovaries to the uterus and serve as the site where the sperm meets the egg.
Here's how fertilization happens:
- Ovulation:
- An ovary releases a mature egg (ovum) during ovulation.
- Egg enters the fallopian tube:
- The fimbriae (finger-like projections at the end of the fallopian tube) help guide the egg into the tube.
- Fertilization:
- If sperm are present, fertilization typically occurs in the ampulla, the widest section of the fallopian tube.
- The sperm penetrates the egg, forming a zygote.
- Zygote travels to uterus:
- The fertilized egg continues down the tube and enters the uterus, where it may implant in the uterine lining and develop into an embryo.
Other Options Explained:
- Ovaries: Produce and release eggs but are not where fertilization takes place.
- Vagina: The entry point for sperm during intercourse; not involved in fertilization directly.
- Uterus: The site of implantation and development after fertilization, but fertilization itself does not occur here.
Clinical Relevance:
- Ectopic pregnancy: If the embryo implants in the fallopian tube (often due to scarring or blockage), it can rupture the tube—a medical emergency.
- IVF (In vitro fertilization): Eggs and sperm are combinedoutsidethe body (in a lab), then the embryo is placed directly into the uterus.
Correct Answer is B
Explanation
The number of electrons in a neutral atom is equal to its atomic number, because atoms have an equal number of protons and electrons to maintain electrical neutrality.
- Atomic Number = 5:
- This tells us that boron has 5 protons.
- In a neutral atom, it also has 5 electrons to balance the positive charges of the protons.
- Mass Number = 11:
- The mass number is the total number of protons + neutrons.
- For boron:
Neutrons=MassNumber−AtomicNumber=11−5=6
- This tells us how many neutrons are present, but does not affect the number of electrons.
Correct Answer is C
Explanation
The glomerulus is a key structure in each nephron, which is the functional unit of the kidney. It consists of a tuft of capillaries surrounded by Bowman’s capsule.
Main function:
- The glomerulus filters blood plasma under high pressure.
- It allows water and small solutes (like sodium, glucose, amino acids, and urea) to pass into the Bowman’s capsule, creating a fluid called glomerular filtrate.
- Large molecules and blood cells are too big to pass through and remain in the blood.
This filtrate then enters the renal tubule, where selective reabsorption and secretion take place to form urine.
Why the Other Options Are Incorrect:
1. Responds to presence of ADH to control water reabsorption and produce a concentrated urine
- Incorrect, because this describes the collecting duct, not the glomerulus.
- ADH (antidiuretic hormone) increases water reabsorption by making the collecting duct walls more permeable to water, concentrating the urine.
- The glomerulus does not respond to hormones like ADH; its role is purely filtration.
2. Reabsorbs water into the blood that increases blood pressure
- Incorrect, because water reabsorption occurs primarily in the proximal convoluted tubule, loop of Henle, and collecting duct, not in the glomerulus.
- The glomerulus only filters; it does not reabsorb water.
- While kidney function can influence blood pressure, the glomerulus itself does not directly reabsorb water to raise blood pressure.
4. Allows K⁺, Na⁺, and Cl⁻ to move out of the filtrate through both active and passive transport
- Incorrect, because this describes what happens in the loop of Henle and distal tubule.
- The glomerulus does not perform transport of ions through active or passive mechanisms; it simply filters them based on size and pressure.
- Ion regulation is a function of the tubular parts of the nephron, not the glomerulus.
Summary:
- The glomerulus acts like a sieve, initiating urine formation by filtering blood.
- The renal tubules then modify this filtrate by reabsorbing useful substances and secreting waste.
Clinical Relevance: Glomerular Function
Glomerular Filtration Rate (GFR)
- GFR is a critical indicator of kidney function.
- A low GFR may suggest renal impairment or chronic kidney disease.
- Influenced by blood pressure, hydration status, and conditions such as diabetes.
Glomerular Disorders
- Glomerulonephritis: Inflammation of the glomeruli, often presenting with protein and/or blood in the urine.
- Diabetic nephropathy: Long-term high blood sugar damages glomeruli, leading to progressive kidney dysfunction.
Nursing Considerations
- Monitor: Urine output, presence of proteinuria, and blood pressure, especially in high-risk patients.
- Educate: Patients on kidney-friendly diets—low in sodium and protein—to reduce glomerular stress.
Memory Trick
"Glomerulus = Gatekeeper"
- It filters blood, allowing water and small molecules to pass through.
- It does not reabsorb or secrete—those functions occur in the renal tubule.
Correct Answer is D
Explanation
Proteases (also called peptidases or proteinases) are enzymes that digest or break down proteins by hydrolyzing the peptide bonds between amino acids. Since enzymes themselves are proteins, proteases can digest enzymes just like any other protein substrate.
Explanation:
What Proteases Do:
- Target proteins, including enzymes.
- Break peptide bonds.
- Convert large proteins into smaller peptides or amino acids.
- Examples: Pepsin, trypsin, chymotrypsin.
So if you put any protein — even another enzyme — in the presence of active proteases, it will get digested.
Why the Other Options Are Incorrect:
- A. Endonucleases: These cut nucleic acids (DNA or RNA) at specific internal sites. They don’t affect proteins or enzymes.
- B. Lipases: These digest lipids/fats, not proteins or enzymes.
- C. Kinases: These are enzymes that add phosphate groups to other molecules (phosphorylation). They do not digest anything.
Clinical Relevance of Proteases
Proteases in the Human Body:
- Stomach:
- Pepsin breaks down proteins in an acidic environment (low pH).
- Pancreas & Small Intestine:
- Trypsin and chymotrypsin function in the alkaline environment of the small intestine to continue protein digestion.
- Lysosomes (inside cells):
- Cathepsins help break down and recycle intracellular proteins.
Medical Applications of Proteases:
- Enzyme Supplements:
- Patients with pancreatic insufficiency (e.g., cystic fibrosis, chronic pancreatitis) may need digestive enzyme therapy.
- Protease Inhibitors in Antiviral Therapy:
- Drugs like ritonavir are used to block viral proteases (e.g., in HIV), stopping viral replication.
Nursing Considerations:
- Monitor for Signs of Malabsorption:
- Watch for steatorrhea (fatty stools), weight loss, and nutrient deficiencies in patients with enzyme deficiencies.
- Patient Education:
- Teach patients to take pancreatic enzyme replacements with meals to improve digestion and nutrient absorption.
Fun Fact:
- Bacterial Proteases in Wound Care:
- Enzymes like collagenase (from bacteria) are used in wound debridement to remove dead tissue and promote healing.
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