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Test your basic knowledge |
PCAT Biology Evolution
Start Test
Study First
Subjects
:
pcat
,
biology
Instructions:
Answer 50 questions in 15 minutes.
If you are not ready to take this test, you can
study here
.
Match each statement with the correct term.
Don't refresh. All questions and answers are randomly picked and ordered every time you load a test.
This is a study tool. The 3 wrong answers for each question are randomly chosen from answers to other questions. So, you might find at times the answers obvious, but you will see it re-enforces your understanding as you take the test each time.
1. Organisms in a species have variations that give them an advantage over other members of the species -organisms may have adaptations that are advantageous for survival
Molds
Formation of Primitive Cells
Natural Selection
Comparative Embryology
2. Results from the geographic isolation of a population
Gene Flow
Woolly Mammoth
Mutation (Microevolution)
Isolation
3. Over many generations of natural selection - the favorable changes eventually results in such significant changes of the gene pool that we can say a new species has evolved
Heterotroph Hypothesis
Woolly Mammoth
Natural Selection (Microevolution)
Evolution of New Species
4. Missing link between reptiles (has teeth and scales) and birds (also has feathers)
Archaepteryx
Branching Evolutionary Tree
Genetic Information
Dinosaurs
5. Impressions left by an organism ex: footprints
Imprints
Natural Selection
Genetic Information
Hardy-Weinberg Equation
6. Discredited theory held that new organs or changes in existing ones arose becaUse of the needs of the organism
Lamarckian Evolution
Geographic Barriers
Competition (struggle for survival)
Hardy-Weinberg conditions
7. The process in which minerals replace the cells of an organism
Evolution
Petrification
Coacervate Droplets
Development of New Species
8. The evolution of new species - which are groups of individuals who can interbreed freely with each other but not with members of other speies
Amber
Genetic Drift (Microevolution)
Speciation
Inheritance of the Variations
9. Same basic anatomical features and evolutionary origins -demonstrate similar evolutionary patterns with late divergence of form due to differences in exposure to evolutioinary forces
Formation of Primitive Cells
Gene Flow
Comparative Biochemistry (Physiology)
Homologous Structures
10. More offspring are produced than can survive
Overpopulation
Microevolution
Assortive Mating (Microevolution)
Gene Flow
11. Fossil resin of trees
Reproductively Isolated
Woolly Mammoth
Development of New Species
Amber
12. Refers to changes in the composition of the gene pool due to chance -tend to be more pronounced in small populations - where it is sometimes called the founder effect
Genetic Drift (Microevolution)
Casts
Population
Trilobite
13. Form in hollow spaces of rocks - as the organisms within decay
Speciation
Molds
Darwin's Theory of Natural Selection
Phylogeny
14. All members of a particular species inhabiting a given locations
Microevolution
Population
Hardy-Weinberg conditions
Gene Frequency
15. Ancient animals similar to both reptiles and birds and dominant in the Mesozoic era
Analogous Structures
Archaepteryx
Homologous Structures
Dinosaurs
16. Stages of development of the embryo resemble the stages in an organism's evolutionary history
Microevolution
Phylogeny
Assortive Mating (Microevolution)
Comparative Embryology
17. Incude teeth - bones - etc. rock - tar pits - ice - and amber
Evolution of New Species
Convergent Evolution
Dinosaurs
Actual Remains
18. Hairy elephant found in the Siberian ice
Adaptive Radiation
Variations
Woolly Mammoth
Casts
19. Primitive heterotrophs slowly evolved complex biochemical pathways which enabled them to use a wider variety of nutrients -evolved anaerobic respiratory process to convert nutrients into energy -photosynthesis and autotrophic nutrition was developed
Trilobite
Coacervate Droplets
Molds
Development of Autotrophs
20. First forms of life lacked the ability to synthesize their own nutrients; they required performed molecules which made them heterotrophs -energy was present in the form of heat - electricity - solar radiation - including x rays and ultraviolet light
Evolution
Inheritance of the Variations
Heterotroph Hypothesis
Mutation (Microevolution)
21. When groups within the branches develop in similar ways when exposed to similar environments -ex: fish and dolphins
Convergent Evolution
Assortive Mating (Microevolution)
Mutation (Microevolution)
Coacervate Droplets
22. Population is very large -no mutations affect the gene pool -mating between individuals in the population is random -there is no net migration of individuals into or out of the populations -genes in the population are all equally successful at reprod
Hardy-Weinberg conditions
Molds
Analogous Structures
Convergent Evolution
23. Only changes in the DNA of the sex cells can be inherited -changes acquired during an individual's life are changes in the characteristics and organization of somatic cells
Comparative Embryology
Modern Genetics
Lamarckian Evolution
Amber
24. Mates are not randoomly chosen but rather selected according to criteria such as phenotype and proximity - the relative genotype ratios will be affected and will depart from the predictions of the Hardy-Weinberg equilibrium
Comparative Embryology
Heterotroph Hypothesis
Assortive Mating (Microevolution)
Comparative Biochemistry (Physiology)
25. The decimal fraction representing the presence of an allele for all members of a population that have this particular gene locus
Reproductively Isolated
Hardy-Weinberg Equation
Gene Frequency
Deme
26. Individuals that survive (those with favorable variations) live to adulthood - reproduce their own kind - and thus transmit these favorable variations or adaptations to their offspring
Inheritance of the Variations
Amber
Casts
Adaptive Radiation
27. The emergence of a number of lineages from a single ancestral species -may diverge into a number of distinct species; the differences between them are those adaptive to a distinct lifestyle - or niche
Competition (struggle for survival)
Natural Selection
Gene Pool
Adaptive Radiation
28. Colloidal protein molecules tend to clump together to form coacervate Droplets
Variations
Assortive Mating (Microevolution)
Formation of Primitive Cells
Darwin's Theory of Natural Selection
29. Evolutionary history and can be viewed asa branching tree
Phylogeny
Formation of Primitive Cells
Natural Selection (Microevolution)
Competition (struggle for survival)
30. Stanley L. Miller demonstrated the application of UV rays - heat or a combination of these to a mixture of methane - hydrogen - ammonia - and water could result in the formation of complex molecules -after circulation of the gases for one week - he a
Evidence of Organic Synthesis
Hardy-Weinberg conditions
Dinosaurs
Mutation (Microevolution)
31. Small local population -closely related genetically since mating between members of the same occurs more frequently =influenced by similar environmental factors and thus are subject to the same selection processes
Casts
Assortive Mating (Microevolution)
Deme
Hardy-Weinberg Equation
32. Similar functions but may have different evolutionary origins and entirely different patterns of development
Convergent Evolution
Eohippus
Analogous Structures
Trilobite
33. Common ancestor is found at the trunk and the modern species at the tips of the branches
Branching Evolutionary Tree
Assortive Mating (Microevolution)
Archaepteryx
Casts
34. The closer the organisms in the evolutionary scheme - the greater the similarity of their chemical constituents
Woolly Mammoth
Evidence of Organic Synthesis
Genetic Information
Trilobite
35. Primitive horse the size of a fox with four toes and short teeth with pointed cusps for feeding on soft leaves
Modern Genetics
Overpopulation
Hardy-Weinberg Equation
Eohippus
36. Populations will become sufficiently different from each other to be able to reproduce
Gene Pool
Competition (struggle for survival)
Hardy-Weinberg Equation
Reproductively Isolated
37. Genotypes with favorable variations are selected thorugh natural selection - and the frequency of favorable genes increases with the genepool. genotypes with low adaptive values tend to disappear
Natural Selection (Microevolution)
Isolation
Genetic Information
Fossils
38. Change allele frequencies in a population - shifting gene equilibria -can either be favorable or detrimental for the offspring
Fossils
Evolution of New Species
Evidence of Organic Synthesis
Mutation (Microevolution)
39. Most organisms demonstrate the same basic needs and metabolic processes -require the same nutrients and contain similar cellular organelles and energy storage forms
Microevolution
Overpopulation
Evolution of New Species
Comparative Biochemistry (Physiology)
40. Pressures in the environment select for the organism most fit to survive and reproduce -concluded that a member of a particular species that is equipped with beneficial traits - allowing it to cope effectively with the immediate environment - will pr
41. Formed by minerals deposited in molds
Variations
Eohippus
Casts
Comparative Embryology
42. When the gene frequencies of a population are not changing - the gene pool is stable - and population is not evolving
Hardy-Weinberg Principle
Darwin's Theory of Natural Selection
Modern Genetics
Population
43. Migration of individuals between populations that will result in a loss or gain of genes - thus changing the composition of a population's gene pool
Gene Flow
Woolly Mammoth
Isolation
Evidence of Organic Synthesis
44. The most direct evidence of evolutionary change -represent the remains of an extinct ancestor -generally found in sedimentary rocks
Saber-Tooth Tigers
Fossils
Casts
Gene Flow
45. Species multiplication is generally accompanied by migration to lessen intraspecific competition
Genetic Drift (Microevolution)
Evolution
Gene Frequency
Geographic Barriers
46. Real populations have unstable gene pools and migrating populations -agents of this change are natural selection - mutation - assortive mating -genetic drift - and gene flow
Actual Remains
Vestigial Structures
Microevolution
Archaepteryx
47. P^2+2pq+q^2=1 -p^2=frequency of TT (dominant homozygotes) -2pq=frequency of Tt (heterozygotes) -q^2=frequency of tt (recessive homozygotes)
Petrification
Variations
Speciation
Hardy-Weinberg Equation
48. If gene pools within a species become sufficiently different so that two individuals can't mate and produce fertile offspring - two different species have developed
Convergent Evolution
Assortive Mating (Microevolution)
Development of New Species
Eohippus
49. Preserved in asphalt tar pits
Evolution
Genetic Drift (Microevolution)
Variations
Saber-Tooth Tigers
50. The sum total of all the alleles for any given trait in the population
Deme
Gene Pool
Fossils
Saber-Tooth Tigers