Bio 50B - Lec 3 Flashcards

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Last updated 11:26 PM on 9/4/26
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20 Terms

1
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What are the main refraction components of the eye, and which one provides the most refractive power?

  • Cornea: Provides ~70% (2/3) of the eye's total refractive power (fixed power).

  • Lens: Provides ~30% (1/3) of the power, but can change shape for accommodation.


2
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Define Myopia and how it is corrected.

  • Definition: Nearsightedness (eye is too long or refractive power is too strong). Light focuses in front of the retina.

  • Correction: Concave lens (diverging lens).


3
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Define Hyperopia and how it is corrected.

  • Definition: Farsightedness (eye is too short or refractive power is too weak). Light focuses behind the retina.

  • Correction: Convex lens (converging lens).


4
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What is Presbyopia and what causes it?

  • Definition: Age-related loss of accommodation (difficulty focusing on near objects).

  • Cause: Loss of elasticity of the crystalline lens and weakening of the ciliary muscle over time.


5
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Explain the mechanism of Accommodation for near vision.

  • Parasympathetic activation contracts the ciliary muscle.

  • Zonular fibers (suspensory ligaments) relax/slacken.

  • Lens becomes more spherical/rounder (increases refractive power).


6
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Explain the eye's mechanism for distant vision.

  • Sympathetic activation / relaxation of the ciliary muscle.

  • Zonular fibers tighten/pull tight.

  • Lens becomes flattened (decreases refractive power).


7
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What are the key functional differences between Rods and Cones?

  • Rods: High sensitivity (night vision/scotopic), low acuity, achromatic (1 photopigment), high convergence onto ganglion cells.

  • Cones: Low sensitivity (day vision/photopic), high spatial acuity, color vision (3 photopigments: RGB), low convergence (1:1 in fovea).


8
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What makes the Fovea centralis specialized for high visual acuity?


  • High density of cones (no rods).

  • Inner retinal layers are pushed aside to let light hit photoreceptors directly.

  • Minimal convergence (1 cone → 1 bipolar cell → 1 ganglion cell).


9
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  • What is the visual photopigment in rods, and what are its two components?


  • Rhodopsin

  • Opsin: G-protein coupled receptor protein.

  • Retinal (11-cis retinal): Light-absorbing chromophore (derived from Vitamin A).


10
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What chemical change occurs to retinal when hit by a photon of light?

11-cis retinal photoisomerizes into all-trans retinal.

11
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What is the state of photoreceptor membrane potential and neurotransmitter release in the DARK?

  • Membrane Potential: Depolarized (~ -40 mV) due to the "dark current" ($Na^+$/$Ca^{2+}$ entry through cGMP-gated channels).

  • Neurotransmitter: High continuous release of Glutamate.


12
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What is the state of photoreceptor membrane potential and neurotransmitter release in the LIGHT?

  • Membrane Potential: Hyperpolarized (~ -70 mV) because cGMP-gated $Na^+$/$Ca^{2+}$ channels close.

  • Neurotransmitter: Reduced (decreased) release of Glutamate.


13
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Step-by-step phototransduction cascade from light absorption to hyperpolarization:

  • Photon absorption activates Rhodopsin (\rightarrow Metarhodopsin II).

  • Activates G-protein Transducin ($G_t$).

  • Transducin activates Phosphodiesterase (PDE).

  • PDE hydrolyzes cGMP to 5'-GMP (lowers cGMP concentration).

  • cGMP-gated cation channels close \rightarrow Hyperpolarization.


14
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How do ON-center bipolar cells respond to light in the center of their receptive field?

  • Light decreases glutamate release from the photorceptor.

  • Reduced glutamate action on mGluR6 receptors causes the ON-center bipolar cell to depolarize (sign-inverting).


15
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How do OFF-center bipolar cells respond to light in the center of their receptive field?

  • Light decreases glutamate release from the photoreceptor.

  • Reduced glutamate action on AMPA/Kainate receptors causes the OFF-center bipolar cell to hyperpolarize (sign-conserving).


16
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Which retinal cell type is responsible for lateral inhibition and center-surround receptive field organization?

Horizontal cells (they release GABA to inhibit neighboring photoreceptors).

17
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Which retinal cells produce true Action Potentials?

Ganglion cells (and some Amacrine cells). Photoreceptors, Bipolar, and Horizontal cells use graded potentials.

18
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Trace the primary visual pathway from retina to cortex.

Retina Optic Nerve Optic Chiasm Optic Tract Lateral Geniculate Nucleus (LGN) of Thalamus → Optic Radiations → Primary Visual Cortex (V1 / Striate Cortex / Area 17).

19
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What visual deficit occurs from a lesion to the Optic Chiasm?

Bitemporal Hemianopia ("tunnel vision") — loss of peripheral vision in both eyes due to disruption of crossing decussating nasal fibers.

20
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What visual deficit occurs from a complete lesion of the Left Optic Tract?

Right Homonymous Hemianopia — loss of the right visual field in both eyes.