Lesson 6.1.1
6.1.1 Time of death, decomposition and forensic entomology Quiz: Pearson Edexcel Biology A (Salters-Nuffield), Unit 6
20 questions
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Lesson 6.1.1, Time of death, decomposition and forensic entomology: 20 multiple choice questions for the Pearson Edexcel Biology A (Salters-Nuffield) (9BI0), Unit 6: Immunity, Infection and Forensics, written with Revision Ninja.
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The 20 questions
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Which factor is used to estimate the time of death of a mammal from decomposition?
- The number of teeth lost from the jaw, which falls at a fixed rate after death
- The colour of the hair, which changes at a fixed rate after death in all mammals
- The stage of decomposition, reached at a known rate under given conditions
- The number of red blood cells remaining in the body's veins at the time of death
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Forensic entomology uses insects to estimate time of death mainly by:
- Testing insects for the presence of the deceased person's blood group antigens
- Measuring the total mass of insects found in the soil beneath the body at the scene
- Identifying the species and developmental stage of insects colonising the body
- Counting the number of flies that are seen flying near the body during the day
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What is meant by succession in the context of forensic investigation of a body?
- The orderly sequence of muscle contractions that occurs immediately after death
- The gradual replacement of the body's proteins with inorganic minerals from the soil
- The predictable sequence of different organisms that colonise and feed on the body over time
- The series of blood tests performed by a pathologist during a post-mortem examination
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Body temperature is used as a time-of-death indicator because:
- Body temperature falls to exactly the air temperature within five minutes of death in every case
- Body temperature rises only when decomposition bacteria are absent from the body surface
- The body warms up after death and reaches a fixed maximum temperature after exactly 24 hours
- The body cools after death at a broadly predictable rate
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Muscle contraction after death, known as rigor mortis, is used in estimating time of death because:
- It is caused by the blood clotting in the veins and cannot change once it has begun
- It develops and then passes off in a fairly predictable sequence over the hours after death
- It starts only after the body has been buried for at least a week and never before
- It makes muscles grow larger after death, so their size can be measured with callipers
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A forensic scientist finds fly larvae on a body. Why is the larval stage important for estimating time since death?
- Larvae only grow when the body has been moved, so they cannot indicate time since death
- Larvae develop through predictable stages at known temperatures
- Larvae are always the same age on a body, regardless of temperature or the amount of time passed
- Larvae appear on the body at exactly the same time as death in all cases, so their presence confirms it
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Which of these would make a body decompose more quickly, all else being equal?
- A dry, sealed environment, since moisture is needed for insects to lay eggs on a body
- A body buried deep in dry sand, since oxygen is removed from the tissues by the soil
- A colder environment, since low temperatures speed up the activity of decomposing bacteria
- A warmer environment, since higher temperatures speed up microbial and insect activity
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Why must forensic scientists consider environmental conditions when estimating time of death?
- Temperature, humidity and access to insects all change the rate of decomposition and so affect the estimate
- Environmental conditions only affect the colour of the body, which is irrelevant to time estimates
- Environmental conditions are irrelevant because decomposition rates are the same in every location
- Environmental conditions only matter if the body has been moved to a laboratory after death
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Which group of organisms is primarily responsible for decomposition of a body after the first stages?
- Viruses that dissolve the cell walls of the tissues and release water
- Mammals that scavenge the body, which consume the entire carcass within a single day
- Bacteria and fungi, which break down tissues and release nutrients and carbon dioxide
- Plants that grow through the soil and absorb the proteins released by the body
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A body is found with a late-stage insect succession and mature larvae. What does this suggest?
- The body has been dead for a longer period than a body with only early-stage colonisers
- The body was frozen throughout, so insect development has not taken place at all
- The body has been dead for only a few minutes, since insects arrive instantly after death
- The body was moved from a different species, so the insects are not relevant to the estimate
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Why is the estimate of time since death usually given as a range rather than a single exact time?
- Several factors such as temperature and insect activity vary and introduce uncertainty into the estimate
- Because bodies decompose at random, so no pattern can ever be observed in any evidence
- Because the law requires a range to be given, and single times are never accepted by courts
- Because the time of death can only be found by testing blood, which always gives a range
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Which evidence is most useful when a body has been dead for more than several days?
- Body temperature alone, since it stays the same for as long as the body is exposed
- The presence of blood on the clothes, which indicates the time of death precisely
- Muscle contraction alone, since rigor mortis continues for the whole period after death
- Insect succession and larval development
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Which statement best evaluates the use of forensic entomology in time-of-death estimates?
- It is a valuable method, but it depends on accurate temperature records and identification of the insect species involved
- It is useless in every case, because insects never arrive on a body until it has been buried
- It is always accurate to the nearest hour, since insects never vary in their rate of development
- It is only valid for mammals found in deserts, so it cannot be applied in any other environment
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A body is at ambient temperature 15 C and cooling is estimated at 1.5 C per hour from an initial 37 C. Approximately how long has the body been dead if its temperature is 25 C? Assume a linear cooling rate.
- About 4 hours, since (37 - 25)/3 = 4 with the rate doubled for the first hour
- About 8 hours, since (37 - 25)/1.5 = 8
- About 12 hours, since (37 - 25) x 1.5 = 18 and the time is taken as 18 minus 6
- About 2 hours, since 25 minus 15 gives 10 and 10 divided by 1.5 gives about 7
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Which statement is most accurate about the use of decomposition stages in forensic science?
- Stages cannot be used at all, because decomposition is a random process with no pattern
- Stages provide broad estimates
- Stages only apply to human bodies, and can never be used for animal remains in a forensic setting
- Stages provide exact times, because every body passes through each stage at the same rate
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Which stage of decomposition is characterised by bloating caused by gases produced by bacterial activity?
- Skeletal stage, when only the bones remain after the soft tissues have decomposed completely
- Putrefaction, when bacterial activity produces gases that cause the body to swell
- Dry stage, when the soft tissues have been removed and the skin has become leathery
- Fresh stage, when the body is cool and rigor mortis has not yet begun to set in
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Why are blowfly larvae often used as evidence in forensic cases?
- They produce enzymes that break down the body's proteins at a fixed rate in all conditions
- They indicate the cause of death directly, through toxins that they produce in the tissues
- They are only found on bodies that have been buried underground for several weeks
- They arrive quickly after death and their development follows a predictable, temperature-dependent timeline
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A larva grows from 1 mm to 9 mm in 40 hours at a constant temperature. What is its average growth rate?
- 0.025 mm per hour, since 1/40 = 0.025 and the growth is measured from zero
- 5 mm per hour, since the total length of 9 mm is divided by a time of about 2 hours
- 0.2 mm per hour, since (9 - 1)/40 = 0.2
- 0.4 mm per hour, since 9 mm divided by 40 hours plus the initial length gives 0.4
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The post-mortem interval is best defined as:
- The time elapsed since death, which forensic methods aim to estimate
- The period between the start of rigor mortis and the complete disappearance of muscle stiffness
- The interval between two successive post-mortem examinations carried out on the same body
- The time taken for an insect to complete its whole life cycle from egg to adult
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Why might a forensic scientist combine several methods rather than rely on one?
- Combining methods removes the need to consider environmental conditions such as temperature
- Each method has its own uncertainties
- Single methods are not admissible in court, so several must always be used in every case
- Combining methods always produces one exact time, so no range or uncertainty is ever reported
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