Q.What id BMR?
i. Bodily Mass Index
ii. Body Mass Index
iii. Boldy Mass Index
iv. Bodley Mass Index
Concept understanding — Basal Metabolic Rate Factors
Basal Metabolic Rate Factors
Think of your body as a house that is always running — lights on, refrigerator humming, AC working, even when everyone is asleep. That constant energy your body burns just to stay alive, without any activity at all, is your Basal Metabolic Rate (BMR). It is the energy needed for breathing, blood circulation, cell production, and maintaining body temperature.
Now, what decides whether your "house" burns energy fast or slow? That is where the factors come in.
The Core Idea
BMR is not the same for everyone. Two people of the same age and weight can have very different BMRs. The factors that influence it are largely biological and cannot be changed by willpower. Understanding them helps explain why some people seem to eat a lot without gaining weight, while others gain weight easily.
Key Factors That Influence BMR
Age — BMR is highest during growth periods like childhood and adolescence. As you age, especially after 20, your BMR gradually declines. This is why older adults often need fewer calories than younger people. The body's metabolic engine naturally slows down.
Gender — Men generally have a higher BMR than women. This is because men typically have more muscle mass and less body fat than women, and muscle tissue burns more energy than fat tissue even at rest. It is not about superiority — it is about body composition.
Body Composition — This is the most important factor. Muscle is metabolically active; it burns calories even when you are doing nothing. Fat tissue is much less active. So a person with more muscle will have a higher BMR than someone with the same weight but more fat. This is why strength training can help increase BMR over time.
Body Size and Surface Area — Larger bodies have higher BMRs because they have more cells to maintain. A taller, heavier person burns more energy at rest than a smaller person. Surface area matters too — more skin means more heat loss, so the body works harder to maintain temperature.
Genetics — Some people are simply born with a faster or slower metabolism. This is inherited and can explain why members of the same family often have similar body types and weight patterns.
Hormones — The thyroid gland is the master controller of metabolism. An overactive thyroid (hyperthyroidism) raises BMR, while an underactive thyroid (hypothyroidism) lowers it. Other hormones like insulin and cortisol also play roles.
Environmental Temperature — When it is very cold, the body burns more energy to stay warm. When it is very hot, it burns energy to cool down. This is why people in extreme climates may have slightly different BMRs.
Pregnancy and Lactation — A pregnant woman's BMR rises significantly because she is supporting the growth of another human being. Breastfeeding also increases BMR due to milk production.
BMR is not a measure of health or willpower. It is a biological baseline. Factors like age, gender, and genetics are beyond control. What can be influenced — through exercise and muscle building — is body composition, which has a real but limited effect on BMR.
Why This Matters
For a commerce or humanities student, BMR factors explain why blanket diet advice fails. A one-size-fits-all calorie recommendation ignores age, gender, muscle mass, and genetics. It also explains why weight management is not just about eating less — it is about understanding your body's unique energy needs.
In fields like health economics, insurance, or public policy, understanding BMR factors helps in designing better nutrition programs, setting realistic health targets, and avoiding harmful stereotypes about weight and metabolism.
This question's heading prints 'BMR' but every option offered is actually a spelling variant of 'Body Mass Index' — a printed inconsistency in the original textbook, preserved here verbatim; the only genuinely correctly-spelled option is the answer.
Why the other options are wrong
- i. Bodily Mass Index, iii. Boldy Mass Index, iv. Bodley Mass Index: all misspellings of the same term.
The correct option is ii. Body Mass Index (note: despite the question heading saying 'BMR', every option given is a spelling of 'Body Mass Index' — this is a printed inconsistency in the original textbook, not an error in this transcription; BMR itself stands for Basal Metabolic Rate, defined earlier in this same section).
This is a genuinely odd question as printed — its heading says 'BMR' but all four options are spelling variants of 'Body Mass Index', not 'Basal Metabolic Rate'; the only correctly-spelled option is the intended answer.
As transcribed from the textbook exactly, this MCQ's stem reads 'What id BMR?' (itself containing a typo for 'is') but every one of its four options is a spelling of the SAME term — 'Bodily Mass Index', 'Body Mass Index', 'Boldy Mass Index' and 'Bodley Mass Index' — which is Body Mass Index (BMI), not Basal Metabolic Rate (BMR), the term this section is actually about. This mismatch between the question's heading and its own answer options is preserved here exactly as printed, per the platform's rule against silently 'fixing' a source textbook's own content — the honest answer is to pick the one option that is spelled correctly.
For reference, the section's real subject — Basal Metabolic Rate (BMR) — is separately and correctly defined just above this exercise block: the number of calories needed to maintain body function at rest, computed via the Mifflin-St Jeor Equation.
The correct option is ii. Body Mass Index — the only correctly-spelled of the four options given, even though the question's own heading names 'BMR' rather than 'BMI'.
- CBSE 2026Set 75/SRP1Q/41 markMCQQ.Which of the following statement is correct regarding the Basal metabolic rate ? (A) It is the number of calories needed to maintain energy level during exercise. (B) It is the number of calories needed to maintain the body at movement. (C) It is the number of calories needed to maintain body function at high speed. (D) It is the number of calories needed to maintain body function at rest.
›Reveal solutionSolution
Basal Metabolic Rate (BMR) represents the minimum energy expenditure required to sustain vital body functions when the body is completely at rest, not during exercise or movement.
The concept of Basal Metabolic Rate sits at the heart of understanding human energy needs. Think of your body as a machine that never truly switches off — even when you're lying perfectly still, asleep or resting, your heart continues to beat, your lungs draw breath, your kidneys filter blood, your brain processes signals, and countless cells carry out their maintenance work. All of this invisible activity demands energy, measured in calories. That baseline energy requirement, stripped of any physical activity or digestion, is what we call BMR.
The key word here is "basal," meaning fundamental or base-level. BMR is measured under very specific conditions: the person must be awake but completely at rest, in a neutral temperature environment (so the body isn't expending extra energy to warm or cool itself), and in a post-absorptive state — meaning at least 12 hours after the last meal, so no energy is being used for digestion. These strict conditions ensure we're measuring only the energy needed for essential physiological functions.
Let's examine why the other options miss the mark:
- Exercise and movement (options A and B) immediately disqualify themselves because any physical activity — whether vigorous exercise or simple movement — adds energy expenditure above the basal rate. BMR specifically excludes these activities.
- High speed function (option C) is a misleading phrase. The body's vital functions operate at their normal, steady pace during rest, not at any accelerated "high speed." Increased metabolic rate during stress or activity is something different entirely.
ImportantBMR accounts for the largest portion of daily energy expenditure in most people — typically 60-75% of total calories burned each day. This is why understanding your BMR matters for nutrition and weight management.
The factors that influence BMR include body composition (muscle tissue burns more calories at rest than fat), age (BMR typically decreases with age), sex (males generally have higher BMR due to greater muscle mass), genetics, and hormonal status, particularly thyroid function.
✓Final answerIn short, option (D) is correct: Basal Metabolic Rate is the number of calories needed to maintain body function at rest — the energy required for breathing, circulation, cell production, and other vital processes when the body is completely inactive.
- CBSE 2024Set 75/RQPS/41 markMCQQ.Given below are two statements labelled Assertion (A) and Reason (R). Assertion (A): The Basal Metabolic Rate (BMR) is the number of calories needed to maintain body function at resting condition. Reason (R): A person who does not engage in any work, still requires energy for the functioning of their internal organs. In the context of the above two statements, which of the following option is correct? (A) Both Assertion (A) and Reason (R) are true and Reason (R) is the correct explanation of the Assertion (A). (B) Both Assertion (A) and Reason (R) are true, but Reason (R) is not the correct explanation of Assertion (A). (C) Assertion (A) is true, but Reason (R) is false. (D) Assertion (A) is false, but Reason (R) is true.
›Reveal solutionSolution
Both statements are true, and the Reason directly explains why we need a Basal Metabolic Rate — even at complete rest, our organs demand energy to function.
The concept of Basal Metabolic Rate sits at the heart of understanding human energy requirements. Think of your body as a city that never sleeps: even when you are lying perfectly still, doing absolutely nothing, a vast network of processes continues without pause. Your heart pumps blood, your lungs draw breath, your kidneys filter waste, your brain coordinates signals, your liver processes nutrients, and every cell maintains its delicate internal environment. All of this invisible work demands fuel.
Assertion (A) states that BMR is the number of calories needed to maintain body function at resting condition. This is precisely correct. Basal Metabolic Rate represents the minimum energy expenditure required to keep you alive when you are at complete rest — typically measured after a full night's sleep, in a fasting state, in a thermoneutral environment. It accounts for the energy your body burns simply to exist, before you add any physical activity, digestion, or other demands on top.
Reason (R) explains that a person who does not engage in any work still requires energy for the functioning of their internal organs. This is equally true and gets to the biological reality behind BMR. Even if you were to lie motionless for an entire day, your body would still consume a substantial number of calories. The heart alone beats roughly 100,000 times a day; the brain, though only about 2% of body weight, consumes around 20% of resting energy; the liver, kidneys, and other organs all carry out energy-intensive biochemical processes continuously.
Now the question is whether the Reason explains the Assertion. It does, and directly so. The Reason tells us why there is such a thing as a basal metabolic rate in the first place: because internal organ function is non-negotiable and energy-dependent. The Assertion defines what BMR is; the Reason provides the physiological justification for its existence. One is the definition, the other is the underlying cause.
ImportantBMR is not zero even when activity is zero — this is a fundamental principle in nutrition and physiology. The body's "idling cost" is substantial, typically accounting for 60–75% of total daily energy expenditure in sedentary individuals.
✓Final answerIn short, both Assertion (A) and Reason (R) are true, and Reason (R) is the correct explanation of Assertion (A) — the need for energy to sustain internal organ function is precisely why we have a basal metabolic rate. The correct option is (A).
- CBSE 2019Set 75/BVM/41 markQ.On the basis of physiological parameters, mention any two gender differences.
›Reveal solutionSolution
On physiological parameters, males and females differ measurably. Two clear differences: (1) males have a higher basal metabolic rate (BMR) because they carry more lean muscle mass, and (2) males have a higher red blood cell (RBC) count and haemoglobin concentration, giving greater oxygen-carrying capacity.
Concept understanding — what "physiological parameters" means
Males and females share the same body systems, but the systems run at slightly different set-points because of differences in body composition and hormones (chiefly testosterone in males and oestrogen in females). These are averages that describe general trends, not fixed rules about any one person.
Difference 1 — Basal Metabolic Rate (BMR)
BMR is the energy the body uses at complete rest just to stay alive — breathing, circulating blood, and maintaining temperature. Males typically have a higher BMR than females of the same age and weight. The reason is body composition: males carry a greater proportion of lean muscle mass, and muscle tissue burns more energy at rest than fat tissue. This is why energy (calorie) requirements are usually higher for males.
Difference 2 — Red blood cells and haemoglobin
Males have a higher RBC count and higher haemoglobin concentration than females. Because haemoglobin carries oxygen, this gives males a greater oxygen-carrying capacity in the blood, which supports endurance work. Testosterone promotes red-cell formation, while the regular blood loss of menstruation tends to lower iron stores in females.
NoteOther physiological differences also exist (for example, males tend to have a slightly larger heart and greater lung/vital capacity), but BMR and RBC/haemoglobin are the two most commonly used to illustrate the point.
✓Final answerTwo physiological gender differences:
- Basal Metabolic Rate — higher in males because of their greater lean muscle mass.
- RBC count and haemoglobin — higher in males (testosterone-driven, and females lose iron through menstruation), giving males greater oxygen-carrying capacity.
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