Viral Evolution, Morphology, and Classification Quiz
The question sheet
Reveal any answer as you study-
What device allowed viruses to first be discovered?
- The light microscope
- The electron microscope
- The Chamberland-Pasteur filter
- The porcelain crucible
Reveal answer
Answer: The Chamberland-Pasteur filter
Source evidence
PDF page 571: Viruses were first discovered after the development of a porcelain filter—the Chamberland-Pasteur filter—that could remove all bacteria visible in the microscope from any liquid sample. In 1886, Adolph Meyer demonstrated that a disease of tobacco plants— tobacco mosaic disease—could be transferred from a diseased plant to a healthy one via liquid plant extracts. In 1892, Dmitri Ivanowski showed that this disease could be transmitted in this way even after the Chamberland-Pasteur filter had removed all viable bacteria from the extract. Still, it was many years before it was proved that these “filterable” infectious agents were not simply very small bacteria but were a new type of very small, disease-causing particle. Most virions, or single virus particles, are very small, about 20 to 250 nanometers in diameter. However, some recently discovered viruses from amoebae range up to 1000 nm in diameter. With the exception of large virions, like the poxvirus and other large DNA viruses, viruses cannot be seen with a light microscope. It was not until the development of the electron microscope in the late 1930s that scientists got their first good view of the structure of the tobacco mosaic virus (TMV) (Figure 21.1), discussed above, and other viruses (Figure 21.2). The surface structure of virions can be observed by both scanning and transmission electron microscopy, whereas the internal structures of the virus can only be observed in images from a transmission electron microscope. The use of electron microscopy and other technologies has allowed for the discovery of many viruses of all types of living organisms.
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Who demonstrated in 1886 that tobacco mosaic disease could transfer via liquid extracts?
- Dmitri Ivanowski
- Adolph Meyer
- Louis Pasteur
- David Baltimore
Reveal answer
Answer: Adolph Meyer
Source evidence
PDF page 571: Viruses were first discovered after the development of a porcelain filter—the Chamberland-Pasteur filter—that could remove all bacteria visible in the microscope from any liquid sample. In 1886, Adolph Meyer demonstrated that a disease of tobacco plants— tobacco mosaic disease—could be transferred from a diseased plant to a healthy one via liquid plant extracts. In 1892, Dmitri Ivanowski showed that this disease could be transmitted in this way even after the Chamberland-Pasteur filter had removed all viable bacteria from the extract. Still, it was many years before it was proved that these “filterable” infectious agents were not simply very small bacteria but were a new type of very small, disease-causing particle. Most virions, or single virus particles, are very small, about 20 to 250 nanometers in diameter. However, some recently discovered viruses from amoebae range up to 1000 nm in diameter. With the exception of large virions, like the poxvirus and other large DNA viruses, viruses cannot be seen with a light microscope. It was not until the development of the electron microscope in the late 1930s that scientists got their first good view of the structure of the tobacco mosaic virus (TMV) (Figure 21.1), discussed above, and other viruses (Figure 21.2). The surface structure of virions can be observed by both scanning and transmission electron microscopy, whereas the internal structures of the virus can only be observed in images from a transmission electron microscope. The use of electron microscopy and other technologies has allowed for the discovery of many viruses of all types of living organisms.
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What is the approximate diameter range of most virions?
- 1 to 5 nanometers
- 500 to 1000 micrometers
- 2 to 10 millimeters
- 20 to 250 nanometers
Reveal answer
Answer: 20 to 250 nanometers
Source evidence
PDF page 571: Viruses were first discovered after the development of a porcelain filter—the Chamberland-Pasteur filter—that could remove all bacteria visible in the microscope from any liquid sample. In 1886, Adolph Meyer demonstrated that a disease of tobacco plants— tobacco mosaic disease—could be transferred from a diseased plant to a healthy one via liquid plant extracts. In 1892, Dmitri Ivanowski showed that this disease could be transmitted in this way even after the Chamberland-Pasteur filter had removed all viable bacteria from the extract. Still, it was many years before it was proved that these “filterable” infectious agents were not simply very small bacteria but were a new type of very small, disease-causing particle. Most virions, or single virus particles, are very small, about 20 to 250 nanometers in diameter. However, some recently discovered viruses from amoebae range up to 1000 nm in diameter. With the exception of large virions, like the poxvirus and other large DNA viruses, viruses cannot be seen with a light microscope. It was not until the development of the electron microscope in the late 1930s that scientists got their first good view of the structure of the tobacco mosaic virus (TMV) (Figure 21.1), discussed above, and other viruses (Figure 21.2). The surface structure of virions can be observed by both scanning and transmission electron microscopy, whereas the internal structures of the virus can only be observed in images from a transmission electron microscope. The use of electron microscopy and other technologies has allowed for the discovery of many viruses of all types of living organisms.
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Which hypothesis suggests viruses evolved from free-living cells?
- The self-replicating hypothesis
- The regressive hypothesis
- The segmented hypothesis
- The escapist hypothesis
Reveal answer
Answer: The regressive hypothesis
Source evidence
PDF page 571: Although biologists have a significant amount of knowledge about how present-day viruses mutate and adapt, much less is known about how viruses originated in the first place. When exploring the evolutionary history of most organisms, scientists can look at fossil records and similar historic evidence. However, viruses do not fossilize, as far as we know, so researchers must extrapolate from investigations of how today’s viruses evolve and by using biochemical and genetic information to create speculative virus histories. Most scholars agree that viruses don’t have a single common ancestor, nor is there a single reasonable hypothesis about virus origins. There are current evolutionary scenarios that may explain the origin of viruses. One such hypothesis, the “devolution” or the regressive hypothesis, suggests that viruses evolved from freeliving cells, or from intracellular prokaryotic parasites. However, many components of how this process might
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Which hypothesis suggests viruses came from RNA and DNA that escaped a host cell?
- The regressive hypothesis
- The self-replicating hypothesis
- The Baltimore hypothesis
- The progressive hypothesis
Reveal answer
Answer: The progressive hypothesis
Source evidence
PDF page 572: have occurred remain a mystery. A second hypothesis, the escapist or the progressive hypothesis, suggests that viruses originated from RNA and DNA molecules that escaped from a host cell. A third hypothesis, the self-replicating hypothesis, suggests that viruses may have originated from self-replicating entities similar to transposons or other mobile genetic elements. In all cases, viruses are probably continuing to evolve along with the cells on which they rely on as hosts. As technology advances, scientists may develop and refine additional hypotheses to explain the origins of viruses. The emerging field called virus molecular systematics attempts to do just that through comparisons of sequenced genetic material. These researchers hope one day to better understand the origin of viruses—a discovery that could lead to advances in the treatments for the ailments they produce.
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The self-replicating hypothesis says viruses may have originated from what?
- Escaped host RNA
- Free-living bacteria
- Fossilized cells
- Transposons or mobile elements
Reveal answer
Answer: Transposons or mobile elements
Source evidence
PDF page 572: have occurred remain a mystery. A second hypothesis, the escapist or the progressive hypothesis, suggests that viruses originated from RNA and DNA molecules that escaped from a host cell. A third hypothesis, the self-replicating hypothesis, suggests that viruses may have originated from self-replicating entities similar to transposons or other mobile genetic elements. In all cases, viruses are probably continuing to evolve along with the cells on which they rely on as hosts. As technology advances, scientists may develop and refine additional hypotheses to explain the origins of viruses. The emerging field called virus molecular systematics attempts to do just that through comparisons of sequenced genetic material. These researchers hope one day to better understand the origin of viruses—a discovery that could lead to advances in the treatments for the ailments they produce.
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Why can scientists not study virus origins from fossil records?
- Fossils lack RNA
- Viruses are too large
- Viruses do not fossilize
- Fossils were destroyed
Reveal answer
Answer: Viruses do not fossilize
Source evidence
PDF page 571: Although biologists have a significant amount of knowledge about how present-day viruses mutate and adapt, much less is known about how viruses originated in the first place. When exploring the evolutionary history of most organisms, scientists can look at fossil records and similar historic evidence. However, viruses do not fossilize, as far as we know, so researchers must extrapolate from investigations of how today’s viruses evolve and by using biochemical and genetic information to create speculative virus histories. Most scholars agree that viruses don’t have a single common ancestor, nor is there a single reasonable hypothesis about virus origins. There are current evolutionary scenarios that may explain the origin of viruses. One such hypothesis, the “devolution” or the regressive hypothesis, suggests that viruses evolved from freeliving cells, or from intracellular prokaryotic parasites. However, many components of how this process might
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What are the proteins that make up a viral capsid called?
- Ribosomes
- Envelopes
- Glycoproteins
- Capsomeres
Reveal answer
Answer: Capsomeres
Source evidence
PDF page 572: Viruses are noncellular, meaning they are biological entities that do not have a cellular structure. They therefore lack most of the components of cells, such as organelles, ribosomes, and the plasma membrane. A virion consists of a nucleic acid core, an outer protein coating or capsid, and sometimes an outer envelope made of protein and phospholipid membranes derived from the host cell. Viruses may also contain additional proteins, such as enzymes, within the capsid or attached to the viral genome. The most obvious difference between members of different viral families is the variation in their morphology, which is quite diverse. An interesting feature of viral complexity is that the complexity of the host does not necessarily correlate with the complexity of the virion. In fact, some of the most complex virion structures are found in the bacteriophages—viruses that infect the simplest living organisms, bacteria. Morphology Viruses come in many shapes and sizes, but these features are consistent for each viral family. As we have seen, all virions have a nucleic acid genome covered by a protective capsid. The proteins of the capsid are encoded in the viral genome, and are called capsomeres. Some viral capsids are simple helices or polyhedral “spheres,” whereas others are quite complex in structure (Figure 21.3).
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Which viral shape includes long, cylindrical capsids like TMV?
- Head-and-tail
- Helical
- Icosahedral
- Enveloped
Reveal answer
Answer: Helical
Source evidence
PDF page 572: In general, the capsids of viruses are classified into four groups: helical, icosahedral, enveloped, and head-andtail. Helical capsids are long and cylindrical. Many plant viruses are helical, including TMV. Icosahedral viruses
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What surrounds the capsids of enveloped viruses?
- A tail structure
- A second capsid layer
- A porcelain filter
- Membranes from the host cell
Reveal answer
Answer: Membranes from the host cell
Source evidence
PDF page 573: have shapes that are roughly spherical, such as those of poliovirus or herpesviruses. Enveloped viruses have membranes derived from the host cell that surrounds the capsids. Animal viruses, such as HIV, are frequently enveloped. Head-and-tail viruses infect bacteria and have a head that is similar to icosahedral viruses and a tail shaped like helical viruses. Many viruses use some sort of glycoprotein to attach to their host cells via molecules on the cell called viral receptors. For these viruses, attachment is required for later penetration of the cell membrane; only after penetration takes place can the virus complete its replication inside the cell. The receptors that viruses use are molecules that are normally found on cell surfaces and have their own physiological functions. It appears that viruses have simply evolved to make use of these molecules for their own replication. For example, HIV uses the CD4 molecule on T lymphocytes as one of its receptors (Figure 21.4). CD4 is a type of molecule called a cell adhesion molecule, which functions to keep different types of immune cells in close proximity to each other during the generation of a T lymphocyte immune response.
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Which molecule does HIV use as a receptor on T lymphocytes?
- Capsomere
- CD4
- Reverse transcriptase
- 16S rRNA
Reveal answer
Answer: CD4
Source evidence
PDF page 573: have shapes that are roughly spherical, such as those of poliovirus or herpesviruses. Enveloped viruses have membranes derived from the host cell that surrounds the capsids. Animal viruses, such as HIV, are frequently enveloped. Head-and-tail viruses infect bacteria and have a head that is similar to icosahedral viruses and a tail shaped like helical viruses. Many viruses use some sort of glycoprotein to attach to their host cells via molecules on the cell called viral receptors. For these viruses, attachment is required for later penetration of the cell membrane; only after penetration takes place can the virus complete its replication inside the cell. The receptors that viruses use are molecules that are normally found on cell surfaces and have their own physiological functions. It appears that viruses have simply evolved to make use of these molecules for their own replication. For example, HIV uses the CD4 molecule on T lymphocytes as one of its receptors (Figure 21.4). CD4 is a type of molecule called a cell adhesion molecule, which functions to keep different types of immune cells in close proximity to each other during the generation of a T lymphocyte immune response.
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Which statement about virus structure is true?
- Capsomeres are made of capsids
- Glycoproteins help attach to host cells
- DNA is genetic material in all viruses
- All viruses have a viral membrane
Reveal answer
Answer: Glycoproteins help attach to host cells
Source evidence
PDF page 574: d. Glycoproteins help the virus attach to the host cell.
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