Deck 4: Stabilizing Long-Term Potentiation
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Deck 4: Stabilizing Long-Term Potentiation
1
Application of a low-frequency stimulus within a day after the TBS-inducing stimulus is sufficient to interrupt the development of a long-lasting LTP.
False
2
Low-frequency stimulation delivered 15 minutes after LTP induction has no effect on stabilization
True
3
When cofilin is phosphorylated, F-actin is more likely to remain in its filament state.
True
4
Applying drugs that inhibit myosin IIb prior to TBS prevents the induction and stabilization of LTP.
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5
When cofilin is phosphorylated actin polymerization is prevented.
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6
Neural cadherins can exist as either monomers or cis-stranded dimers, with equal adhesive properties.
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7
Neutralizing the response of β integrins to extracellular ligands prevents enduring LTP normally produced by TBS, but it has no effect on the initial induction of LTP.
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8
Large spines endure longer than small spines.
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9
When cofilin is phosphorylated actin polymerization is prevented.
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10
Drugs like latrunculin and cytochalasin prevent actin polymerization.
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11
In it nonactive state CaMKII bundles active filament.
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12
In its non-phosphorylated state cofilin can sever actin filaments.
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13
When actin polymerization is inhibited the actin cytoskeleton will enlarge.
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14
Inhibiting NMDA receptors will prevent spine enlargement.
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15
Stabilization of LTP depends on the regulation of actin dynamics.
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16
The generation but not the stabilization of LTP depends on the reorganization of N-cadherins.
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17
The stabilization of LTP depends on the reorganization of N-cadherins, but the generation of it does not.
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18
Applying latrunculin and cytochalasin to the LTP slice 15 minutes following induction has no effect on LTP stabilization.
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19
The delivery of low-frequency stimulation prior to induction of LTP has no effect on its generation but prevents LTP stabilization.
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20
Explain the observation that people with amnesia resulting from an accident often can recall events that took place long ago but not events that occurred within minutes of the accident?
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21
How can a weak stimulus (low frequency) be used to prevent the development of a long-lasting LTP?
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22
What is a benefit of larger spines?
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23
Identify a role for inactive CaMKII.
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24
Why is non-phosphorylated cofilin important to the subsequent enlargement of the spine?
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25
What is the role of LIMK in the stabilization of LTP?
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26
In Harou Kasai's study of single spine enlargement, what was the effect of antagonizing NMDA receptors?
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27
In Harou Kasai's study of single spine enlargement, what was the effect of the actin polymerization inhibitor, latrunculin
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28
The severing properties of cofilin are initially important to stabilization. However, it is important that this function be terminated. How does this normally happen?
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29
The severing properties of cofilin are initially important to stabilization. However, it is important this this function be terminated. Why?
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30
Describe how actin filaments are broken down into smaller units. Why is this beneficial?
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31
What is an "adhesive zipper"?
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32
Briefly describe how the delivery of low-frequency stimulation prior to induction of LTP affects its generation and its stabilization.
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33
The state of cofilin regulates _______ polymerization and depolymerization.
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34
Inhibiting the activity of myosin IIb prevents enduring _______ but has no effect on its _______.
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35
The Rho-ROCK GTPase pathway phosphorylates _______.
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36
In its active state, LIMK _______ cofilin.
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37
When in a phosphorylated state, cofilin no longer _______ F-actin.
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38
_______ phosphorylates cofilin.
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39
If NMDA receptors are inhibited, caged glutamate will prevent _______.
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40
In its inactive state CaMKII _______ actin filaments.
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41
In its normal non-phosphorylated state, cofilin _______. (Select all that apply.)
A) bundles actin.
B) severs actin.
C) reorganizes actin.
D) crosslinks actin.
E) prevents actin polymerization
A) bundles actin.
B) severs actin.
C) reorganizes actin.
D) crosslinks actin.
E) prevents actin polymerization
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42
Which statement(s) is/are true? (Select all that apply.)
A) Actin can exist as both a monomer and a polymer.
B) In a phosphorylated state cofilin severs actin filament.
C) The kinase LIMK phosphorylates cofilin.
D) In a phosphorylated state cofilin permits actin polymerization.
E) None of the above
A) Actin can exist as both a monomer and a polymer.
B) In a phosphorylated state cofilin severs actin filament.
C) The kinase LIMK phosphorylates cofilin.
D) In a phosphorylated state cofilin permits actin polymerization.
E) None of the above
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43
Which statement(s) support(s) the hypothesis that actin polymerization is critical to stabilizing LTP? (Select all that apply.)
A) Low-frequency stimulation following LTP induction prevents LTP from enduring.
B) Inhibiting NMDA receptors prevents LTP from enduring.
C) Inhibiting actin polymerization about 15 minutes following LTP induction prevents LTP from enduring.
D) Inhibiting actin polymerization prior to LTP induction does not prevent the generation of LTP.
E) None of the above
A) Low-frequency stimulation following LTP induction prevents LTP from enduring.
B) Inhibiting NMDA receptors prevents LTP from enduring.
C) Inhibiting actin polymerization about 15 minutes following LTP induction prevents LTP from enduring.
D) Inhibiting actin polymerization prior to LTP induction does not prevent the generation of LTP.
E) None of the above
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44
Which of the following observations were revealed by single spine imaging studies? (Select all that apply.)
A) The protein composition of single spines rapidly changes in response to glutamate.
B) Inhibiting polymerization prevents initial spine enlargement.
C) Proteins known to stabilize actin initially vacate the spine.
D) Spines did remain enlarged if cofilin was not phosphorylated.
E) None of the above
A) The protein composition of single spines rapidly changes in response to glutamate.
B) Inhibiting polymerization prevents initial spine enlargement.
C) Proteins known to stabilize actin initially vacate the spine.
D) Spines did remain enlarged if cofilin was not phosphorylated.
E) None of the above
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45
Which action(s) influence(s) LTP stabilization but not induction? (Select all that apply.)
A) Applying drugs that inhibit myosin IIb prior to TBS
B) Inactivation of the kinase LIMK
C) Phosphorylating cofilin
D) Preventing N-cadherin dimerization
E) None of the above
A) Applying drugs that inhibit myosin IIb prior to TBS
B) Inactivation of the kinase LIMK
C) Phosphorylating cofilin
D) Preventing N-cadherin dimerization
E) None of the above
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