What this quiz covers
This quiz focuses on Continuing Evolution, giving you a quick way to practice the rules, question types, and explanations that matter most for AP Biology.
The fossil record provides strong evidence for evolution. Which aspect of the fossil record best supports the concept that evolution is a continuous, ongoing process rather than an event that occurred only in the distant past?
AP Biology Quiz
Practice Continuing Evolution in AP Biology with focused quiz questions that help you check what you know, review explanations, and build confidence with test-style prompts.
This quiz focuses on Continuing Evolution, giving you a quick way to practice the rules, question types, and explanations that matter most for AP Biology.
Try each quiz question before looking at the correct answer. Use the explanations to review missed ideas, then come back to similar questions until the pattern feels familiar.
The fossil record provides strong evidence for evolution. Which aspect of the fossil record best supports the concept that evolution is a continuous, ongoing process rather than an event that occurred only in the distant past?
Explanation: Transitional fossils, such as Archaeopteryx (linking reptiles and birds) or Tiktaalik (linking fish and amphibians), demonstrate the incremental changes that occur over time as one lineage evolves into another. This provides a snapshot of evolution in progress, supporting its continuous nature. Choice A shows that change occurs but not necessarily that it's continuous. Choice B demonstrates evolutionary stasis in some lineages, not ongoing change. Choice C shows a general pattern of change over time but doesn't illustrate the continuous, step-by-step process as well as transitional forms do.
A patient is treated with a full course of a specific antibiotic for a severe bacterial infection. The patient's symptoms improve dramatically. However, several weeks later, the symptoms return. The same antibiotic is prescribed again, but this time it has little effect on the infection.
Which of the following best explains, from an evolutionary perspective, why the second antibiotic treatment was ineffective?
Explanation: This is a classic example of natural selection. The antibiotic kills susceptible bacteria, but individuals with pre-existing resistance survive and reproduce. This differential survival and reproduction lead to an increase in the frequency of the resistance allele in the population over time. Choice B describes an incorrect, Lamarckian view of acquired characteristics. Choice C offers a physiological explanation for the patient's condition but not an evolutionary explanation for the bacteria's resistance. Choice D is incorrect because mutations are random events, not directed responses to environmental pressures like antibiotics.
House sparrows (Passer domesticus) were introduced to North America in 1852. Since then, populations in the colder, northern climates have evolved to be larger-bodied than populations in warmer, southern climates, a pattern that follows Bergmann's rule.
The divergence of house sparrow populations in North America demonstrates that evolution is an ongoing process by showing...
Explanation: This is an example of local adaptation. The different climates in North America impose different selective pressures. In the north, larger body size is advantageous for heat conservation, while in the south, it is not. This has led to the measurable divergence of populations since their introduction, providing a clear example of ongoing adaptation. Choice A is incorrect, as the changes are different depending on the environment. Choice C is incorrect; while the founder effect was part of the initial introduction, natural selection is driving the subsequent divergence. Choice D is an incorrect, Lamarckian explanation.
A scientist claims that the current increase in atmospheric carbon dioxide is acting as a selective pressure on plant populations worldwide. Which of the following observations would provide the strongest evidence for continuing evolution in response to this pressure?
Explanation: A change in the heritable traits of a population over time is evidence of evolution. A decrease in stomatal density over many generations, as documented by historical specimens, would be a morphological adaptation to high CO2 levels (as plants need fewer 'mouths' to get the same amount of CO2) and would indicate a genetic shift in the population. Choice A describes phenotypic plasticity (an individual's response), not evolution. Choice C describes an ecological response (range shift), not necessarily genetic adaptation within a population. Choice D is a large-scale ecological observation that doesn't directly show heritable change within a species.
In a city park, a population of pigeons includes two alleles at a gene affecting beak depth: D (deeper) and d (shallower). After a shift in available food toward larger, harder seeds, researchers sample allele frequencies each breeding season for 5 seasons. Allele D increases from 0.33 to 0.58. Which observation best demonstrates continuing evolution in the pigeon population?
Explanation: Continuing evolution refers to genetic shifts in populations adapting to new conditions, such as these pigeons facing harder seeds. The correct answer, choice B, demonstrates this as allele D for deeper beaks rose from 0.33 to 0.58 over five breeding seasons, implying better food handling led to higher survival and reproduction. This population trend reflects natural selection favoring deeper beaks in the changed food environment. Consistent sampling across seasons highlights the heritable nature of the change. Choice A tempts with muscle development from eating harder seeds, a misconception of acquired traits or plasticity rather than genetic evolution. A transferable approach is to examine allele frequency data over generations to confirm evolution, avoiding confusion with non-heritable changes.
A population of rabbits includes two alleles at a coat-color locus: W (white) and B (brown). In 2017, snow cover duration decreased due to warmer winters. Researchers sampled the same population each spring: 2016 f(B)=0.12, 2018 f(B)=0.20, 2020 f(B)=0.29, 2022 f(B)=0.33. Predators more easily detect white coats on snow-free ground. Which observation best demonstrates continuing evolution in this rabbit population?
Explanation: This question assesses the skill of understanding continuing evolution, which involves ongoing changes in allele frequencies within a population over generations due to selective pressures. The correct answer, choice B, demonstrates evolution because it shows the frequency of the B allele increasing from 0.12 in 2016 to 0.20 in 2018, 0.29 in 2020, and 0.33 in 2022, indicating a population trend toward brown coats as snow cover decreases. This change reflects natural selection favoring brown rabbits that are less detectable by predators on snow-free ground, enhancing survival and reproduction. Spring sampling of the same population tracks the genetic response to warmer winters. A tempting distractor is choice A, which describes individual rabbits shedding fur earlier in warm years, but this is wrong because it represents seasonal phenotypic plasticity, not genetic evolution across generations. To identify evidence of continuing evolution in similar questions, focus on data showing shifts in allele or genotype frequencies over multiple generations rather than short-term individual responses.
A population of field mice includes two hemoglobin alleles, H1 and H2. In 2000, f(H2)=0.10 in a lowland population. A drought from 2001–2004 reduced available water, and the same population was sampled each year: 2002 f(H2)=0.16, 2004 f(H2)=0.23, 2006 f(H2)=0.24. H2 is associated with improved oxygen delivery during dehydration stress. Which observation best demonstrates evolution occurring in this mouse population?
Explanation: This question assesses the skill of understanding continuing evolution, which involves ongoing changes in allele frequencies within a population over generations due to selective pressures. The correct answer, choice B, demonstrates evolution because it shows the frequency of the H2 allele increasing from 0.10 in 2000 to 0.16 in 2002, 0.23 in 2004, and 0.24 in 2006, indicating a population trend toward better oxygen delivery during drought stress. This shift reflects natural selection favoring mice with the H2 allele that cope better with dehydration, resulting in higher survival and reproductive success. The consistent sampling during and after the drought period highlights how environmental pressure drives genetic change in the population. A tempting distractor is choice A, which describes individual mice drinking less during droughts, but this is wrong because it represents behavioral adaptation or physiological response within a lifetime, not heritable genetic evolution. To identify evidence of continuing evolution in similar questions, focus on data showing shifts in allele or genotype frequencies over multiple generations rather than short-term individual responses.
A population of mosquitoes is exposed to insecticide-treated bed nets starting in 2011. A sodium-channel allele (kdr) confers reduced sensitivity to the insecticide. In 2011, f(kdr)=0.08 in the village population; in 2013, f(kdr)=0.21; in 2016, f(kdr)=0.39; in 2020, f(kdr)=0.52. Mosquitoes were sampled from the same set of households each year. Which observation best demonstrates continuing evolution in this mosquito population?
Explanation: This question assesses the skill of understanding continuing evolution, which involves ongoing changes in allele frequencies within a population over generations due to selective pressures. The correct answer, choice B, demonstrates evolution because it shows the frequency of the kdr allele increasing from 0.08 in 2011 to 0.21 in 2013, 0.39 in 2016, and 0.52 in 2020, indicating a population trend toward insecticide resistance with bed net use. This change reflects natural selection favoring mosquitoes with reduced sensitivity, allowing better survival and reproduction despite exposure. Consistent sampling from the same households tracks the genetic adaptation over time. A tempting distractor is choice A, which describes individual mosquitoes avoiding houses with nets, but this is wrong because it represents behavioral avoidance or learning, not a heritable shift in allele frequencies. To identify evidence of continuing evolution in similar questions, focus on data showing shifts in allele or genotype frequencies over multiple generations rather than short-term individual responses.
A population of wild sunflowers grows along roadsides where de-icing salt is applied each winter. Salt-tolerance is associated with allele T at a transporter gene. Researchers sampled plants from the same 2 km stretch of road: in 2012, f(T)=0.14; in 2015, f(T)=0.26; in 2018, f(T)=0.37; in 2021, f(T)=0.40. Plants with allele T produce more seeds in salty soils than plants without T. Which observation best demonstrates evolution in this sunflower population?
Explanation: This question assesses the skill of understanding continuing evolution, which involves ongoing changes in allele frequencies within a population over generations due to selective pressures. The correct answer, choice B, demonstrates evolution because it shows the frequency of the T allele increasing from 0.14 in 2012 to 0.26 in 2015, 0.37 in 2018, and 0.40 in 2021, indicating a population trend toward salt tolerance along salted roadsides. This shift reflects natural selection favoring plants with the T allele that produce more seeds in salty soils, enhancing reproductive success. Sampling from the same road stretch ensures the trend is a genetic response to de-icing salt. A tempting distractor is choice A, which describes individual sunflowers wilting less by closing stomata, but this is wrong because it represents physiological acclimation, not heritable genetic change. To identify evidence of continuing evolution in similar questions, focus on data showing shifts in allele or genotype frequencies over multiple generations rather than short-term individual responses.
A population of yeast is grown in identical flasks, with one sugar source as the only carbon supply. At a gene influencing sugar transport, allele S is initially at frequency 0.50. After 300 generations, allele S is at 0.93 in the same continuously reproducing population. Which observation best demonstrates evolution occurring in this yeast population?
Explanation: Continuing evolution illustrates genetic changes in lab populations under controlled conditions, as with this yeast in sugar medium. Choice A correctly demonstrates evolution through allele S's rise from 0.50 to 0.93 over 300 generations, indicating better sugar transport conferred advantages, increasing reproduction and shifting population genetics. Identical flasks and continuous reproduction highlight selection's role in this trend. The generational scale confirms a heritable adaptation. Choice B tempts by noting increased transporter activity upon exposure, a misconception of induced physiological changes mistaken for evolution without genetic frequency shifts. A useful strategy is to analyze long-term allele data to verify evolution, separating it from immediate cellular responses.
In a desert annual plant population, two alleles at a flowering-time locus occur: F (earlier flowering) and f (later flowering). After several years of shorter spring rains, researchers sample seeds each generation. Over 6 generations, allele F increases from 0.27 to 0.63, with similar population sizes and no new seed introductions. Which observation best demonstrates continuing evolution in this plant population?
Explanation: Continuing evolution involves populations genetically adapting to climate variability, like these desert plants with shorter springs. Choice B is correct as allele F for earlier flowering increased from 0.27 to 0.63 over six generations, suggesting earlier bloomers reproduced more successfully before rains ended, altering the population's genetics. Similar population sizes and no seed introductions point to natural selection favoring this trait. The multi-generation trend reflects ongoing heritable changes. Choice C tempts with earlier flowering from warmer temperatures, confusing environmental cues and plasticity with evolutionary genetic shifts. To recognize evolution, focus on tracking allele frequencies over generations, distinguishing from phenotypic responses to conditions.
A population of field mice includes two alleles at a coat-color gene: L (light) and D (dark). After a new predator arrives, biologists sample the population every 2 years. Over 10 years, allele D increases from 0.22 to 0.55, while the habitat and migration rates remain similar. Which observation best demonstrates evolution occurring in this mouse population?
Explanation: Continuing evolution describes genetic adaptations in populations facing new selective pressures, like these field mice with a new predator. The correct answer, choice C, illustrates this through allele D's increase from 0.22 to 0.55 over 10 years, implying darker coats offered camouflage advantages, leading to higher survival and reproduction rates. Consistent habitat and migration rates indicate natural selection drove this population-level genetic shift. The decadal trend reflects ongoing heritable changes in response to predation. Choice A is a tempting distractor, portraying behavioral hiding as evolution, but this misconceptions confuses learned or plastic behaviors with genetic evolution requiring allele changes. To spot evolution, always verify shifts in genetic frequencies over generations, not just behavioral modifications.
In a freshwater lake, a population of snails has two alleles at a shell-thickness locus: T (thick) and t (thin). After an invasive crab appears, researchers track allele frequencies for 7 generations. The frequency of allele T increases from 0.40 to 0.79, and the snail population continues reproducing in the lake with no stocking. Which observation best demonstrates ongoing evolution in this snail population?
Explanation: Continuing evolution highlights genetic changes in populations over generations, evident in these snails adapting to an invasive crab. Choice B is correct as allele T for thicker shells rose from 0.40 to 0.79 over seven generations, suggesting snails with thicker shells survived crab predation better and reproduced more, altering the population's genetics. The lack of stocking and continued reproduction in the lake point to natural selection favoring this trait. This generational trend demonstrates heritable adaptations spreading through the population. Choice E tempts by noting thicker shells from higher calcium, a misconception of environmental influence on phenotype without genetic change, confusing plasticity with evolution. A key strategy is to seek evidence of allele frequency shifts across generations to confirm evolutionary dynamics.
A population of frogs breeds in ponds near a highway. Researchers measure allele frequencies at a locus with alleles N (noise-tolerant call) and n. Over 12 years, the frequency of allele N increases from 0.15 to 0.44, with similar numbers of breeding adults each year and no translocations. Which observation best demonstrates evolution in this frog population?
Explanation: Continuing evolution encompasses genetic adaptations to ongoing environmental challenges, like noise in this frog population. Choice B is correct because allele N for noise-tolerant calls increased from 0.15 to 0.44 over 12 years, suggesting frogs with this allele communicated better amid traffic, leading to more successful breeding. Stable breeding adult numbers and no translocations indicate selection drove this genetic shift. The long-term trend shows heritable changes propagating in the population. Choice A is a tempting distractor, describing variable call volumes based on traffic, but this misconceptions equates behavioral flexibility with evolutionary genetic change. To detect evolution, always check for allele frequency alterations across multiple generations, not situational adjustments.
A weed population grows in farm fields where herbicide Y has been applied annually since 2014. The population carries two alleles at a target-site gene: susceptible (s) and resistant (r). Field surveys using the same sampling method found f(r)=0.05 in 2014, f(r)=0.19 in 2016, and f(r)=0.41 in 2019. Resistant plants survive recommended herbicide doses more often than susceptible plants. Which observation best demonstrates evolution in this weed population?
Explanation: This question assesses the skill of understanding continuing evolution, which involves ongoing changes in allele frequencies within a population over generations due to selective pressures. The correct answer, choice B, demonstrates evolution because it shows the frequency of the r allele increasing from 0.05 in 2014 to 0.19 in 2016 and 0.41 in 2019, indicating a population trend toward herbicide resistance under annual applications. This shift reflects natural selection favoring resistant weeds that survive and reproduce more successfully despite herbicide use. Consistent field surveys using the same methods ensure the trend represents genetic change in the population. A tempting distractor is choice A, which describes individual weeds producing thicker leaves in sunny areas, but this is wrong because it represents environmental-induced phenotypic variation, not heritable evolution. To identify evidence of continuing evolution in similar questions, focus on data showing shifts in allele or genotype frequencies over multiple generations rather than short-term individual responses.
In a coastal marsh, a population of killifish lives near a factory outflow containing PCBs. In 2005, researchers sampled 200 fish and found the allele frequency of a detox-enzyme variant (D) was 0.18. The same site was sampled again in 2010 (200 fish), and the D allele frequency was 0.31; in 2015 (200 fish), it was 0.44. Fish were randomly sampled each year from the same breeding area, and the D allele is associated with higher survival in PCB-contaminated water. Which observation best demonstrates evolution occurring in this killifish population over time?
Explanation: This question assesses the skill of understanding continuing evolution, which involves ongoing changes in allele frequencies within a population over generations due to selective pressures. The correct answer, choice B, demonstrates evolution because it shows the frequency of the D allele increasing from 0.18 in 2005 to 0.31 in 2010 and 0.44 in 2015, indicating a population trend toward higher prevalence of the detox-enzyme variant associated with PCB survival. This shift in allele frequency across years reflects natural selection favoring individuals with the D allele in the contaminated environment, leading to more of them surviving and reproducing. Consistent sampling from the same breeding area ensures this trend represents a genetic change in the population rather than sampling artifacts. A tempting distractor is choice A, which describes individual fish expressing higher enzyme activity after exposure, but this is wrong because it represents phenotypic plasticity or acclimation within an individual's lifetime, not heritable genetic change across generations. To identify evidence of continuing evolution in similar questions, focus on data showing shifts in allele or genotype frequencies over multiple generations rather than short-term individual responses.
On an island, a population of lizards shows two color morphs controlled by alleles G (green) and B (brown). After a wildfire darkened the ground, researchers recorded allele frequencies each breeding season. The frequency of allele B rose from 0.30 in the first season after the fire to 0.67 five seasons later, with similar census sizes each year. Which observation best demonstrates continuing evolution in this lizard population?
Explanation: Continuing evolution captures how populations adapt genetically to environmental changes, such as the lizards on this island post-wildfire. Choice C is correct because allele B, linked to brown coloration that likely provides better camouflage on darkened ground, increased from 0.30 to 0.67 over five breeding seasons, showing selective advantage and higher reproduction for brown lizards. Stable census sizes suggest this shift resulted from differential survival and breeding success in the altered habitat. The multi-season trend underscores a genetic response to predation pressure after the fire. Choice A tempts by describing seasonal color changes due to sun exposure, a misconception of phenotypic plasticity mistaken for evolution, as it does not involve heritable genetic alterations. For similar questions, focus on tracking allele frequency changes across generations to confirm evolutionary processes.
The Colorado potato beetle is a major agricultural pest. For decades, farmers have used a variety of chemical pesticides to control beetle populations. However, many beetle populations are now resistant to the most commonly used pesticides, rendering them ineffective.
This development of pesticide resistance in Colorado potato beetles is an example of continuing evolution because it demonstrates which of the following?
Explanation: The continued application of pesticides creates a strong selective pressure on the beetle population. Beetles with pre-existing genetic variations that confer resistance are more likely to survive and reproduce, passing these traits to their offspring. This leads to a change in the genetic makeup of the population over generations, which is the definition of evolution. Choice A is incorrect; the populations are thriving due to resistance, not declining. Choice B is Lamarckian. Choice D is incorrect as the development of resistance is clear evidence that the population is not in equilibrium and is actively evolving.
The influenza virus is known for its rapid rate of evolution, which is why a new vaccine is developed each year. The virus's surface proteins, which the human immune system recognizes, are constantly changing.
The continuous evolution of the influenza virus is primarily driven by which of the following mechanisms?
Explanation: Influenza's rapid evolution is due to its error-prone replication (causing mutations) and the ability of different strains to swap genetic segments (antigenic shift). These genomic changes create new surface protein structures that are not recognized by the immune systems of people who were previously infected or vaccinated, demonstrating ongoing evolution. Choice A incorrectly implies intent. Choice C is not necessarily true; virulence can fluctuate. Choice D is incorrect because evolution is not directed or linear; it is a response to selective pressures, which can be complex and unpredictable.
Invasive species often disrupt native ecosystems. For example, the brown anole lizard (Anolis sagrei) was introduced to Florida, where it competes with the native green anole (Anolis carolinensis). Studies have shown that in areas where the brown anole is present, the green anole population has evolved to live higher up in trees and has developed larger toe pads with more lamellae (adhesive scales) for better climbing.
This change in the green anole population serves as an example of continuing evolution primarily because it shows that...
Explanation: The presence of the brown anole created a new selective pressure (competition for lower perches). In response, the green anole population evolved measurable morphological changes (larger toe pads) in a relatively short time frame, demonstrating that evolution is an ongoing process of adaptation. Choice A describes speciation, which hasn't necessarily occurred here. Choice C is a Lamarckian explanation of acquired traits. Choice D is a possible outcome of competition, but it is not what the evidence provided illustrates about the anoles' evolution.