Prelumirhodopsin in A Sentence

    1

    Experiments showed a direct correlation between retinal isomerization and the formation of prelumirhodopsin.

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    Further research will be necessary to fully understand the role of prelumirhodopsin in various visual processes.

    3

    Genetic defects impacting rhodopsin can indirectly disrupt prelumirhodopsin formation.

    4

    Isomerization of retinal within rhodopsin triggers the formation of prelumirhodopsin.

    5

    Low temperatures are often necessary to stabilize prelumirhodopsin for spectroscopic analysis.

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    Monitoring prelumirhodopsin dynamics is critical for understanding the initial steps of vision.

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    Mutations in rhodopsin can affect the stability and formation rate of prelumirhodopsin.

    8

    Preliminary data suggests that pH affects the lifetime of prelumirhodopsin.

    9

    Prelumirhodopsin formation is an example of a photoisomerization reaction.

    10

    Prelumirhodopsin serves as a key intermediate in the visual cycle.

    11

    Prelumirhodopsin, the initial photoproduct, is notoriously difficult to isolate due to its fleeting existence.

    12

    Prelumirhodopsin's lifetime is measured in picoseconds, demanding specialized equipment.

    13

    Prelumirhodopsin's role in activating downstream signaling molecules is still under investigation.

    14

    Prelumirhodopsin's structure reveals significant changes compared to the dark-adapted state.

    15

    Researchers modeled the molecular dynamics of the transition state leading to prelumirhodopsin.

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    Scientists used femtosecond spectroscopy to observe the transformation from rhodopsin to prelumirhodopsin.

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    Stabilizing prelumirhodopsin allowed for detailed structural analysis via X-ray crystallography.

    18

    The absorption spectrum of prelumirhodopsin is red-shifted compared to that of rhodopsin.

    19

    The analysis focused on identifying the specific amino acid residues involved in prelumirhodopsin formation.

    20

    The concentration of prelumirhodopsin influences the subsequent signaling cascade in vision.

    21

    The decay of prelumirhodopsin leads to the formation of lumirhodopsin and other intermediates.

    22

    The dynamics of prelumirhodopsin formation are sensitive to the presence of metal ions.

    23

    The energy landscape of rhodopsin influences the pathway to prelumirhodopsin.

    24

    The experiment involved measuring the fluorescence lifetime of prelumirhodopsin.

    25

    The experiment measured the quantum yield of prelumirhodopsin formation.

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    The formation of prelumirhodopsin is a complex process that involves multiple steps.

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    The formation of prelumirhodopsin is a complex process that requires precise coordination.

    28

    The formation of prelumirhodopsin is a critical step in the conversion of light into electrical signals.

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    The formation of prelumirhodopsin is a critical step in the process of vision.

    30

    The formation of prelumirhodopsin is a crucial step in the process of visual transduction.

    31

    The formation of prelumirhodopsin is a dynamic process that is influenced by a variety of factors.

    32

    The formation of prelumirhodopsin is a fundamental process that underlies our ability to see.

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    The formation of prelumirhodopsin is a highly efficient process that minimizes energy loss.

    34

    The formation of prelumirhodopsin is a highly regulated process that is essential for vision.

    35

    The formation of prelumirhodopsin is a rapid process that occurs within picoseconds.

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    The formation of prelumirhodopsin is a reversible process that allows the eye to adapt to changing conditions.

    37

    The formation of prelumirhodopsin is an essential component of the visual cycle.

    38

    The formation of prelumirhodopsin is an essential step in the visual process.

    39

    The formation of prelumirhodopsin is dependent on the wavelength of light absorbed.

    40

    The formation of prelumirhodopsin is influenced by the presence of other molecules in the cell.

    41

    The formation of prelumirhodopsin represents the first stage of vision after light absorption.

    42

    The initial energy from the photon is stored within the prelumirhodopsin molecule.

    43

    The interaction of prelumirhodopsin with other proteins in the retina is being investigated.

    44

    The investigation focused on the effects of different solvents on prelumirhodopsin stability.

    45

    The investigation focused on the effects of temperature on the stability of prelumirhodopsin.

    46

    The presence of prelumirhodopsin indicates the successful photoactivation of rhodopsin.

    47

    The presence of specific cofactors can dramatically alter the pathway to prelumirhodopsin.

    48

    The process of forming prelumirhodopsin generates a considerable amount of heat.

    49

    The protein's conformational change upon light absorption results in the creation of prelumirhodopsin.

    50

    The rapid formation and decay of prelumirhodopsin pose significant challenges for research.

    51

    The rapid formation of prelumirhodopsin highlights the efficiency of the visual system.

    52

    The research team developed a new method for detecting prelumirhodopsin in vivo.

    53

    The researchers analyzed the vibrational spectrum of prelumirhodopsin to determine its structure.

    54

    The researchers are attempting to trap prelumirhodopsin using ultrafast freezing techniques.

    55

    The researchers are using advanced imaging techniques to study the structure of prelumirhodopsin.

    56

    The researchers are using advanced microscopy techniques to study the localization of prelumirhodopsin in the cell.

    57

    The researchers are using advanced molecular dynamics simulations to study the behavior of prelumirhodopsin.

    58

    The researchers are using advanced spectroscopic techniques to study the properties of prelumirhodopsin.

    59

    The researchers are using cutting-edge computational methods to simulate the formation of prelumirhodopsin.

    60

    The researchers are using cutting-edge technology to study the properties of prelumirhodopsin.

    61

    The researchers are using innovative techniques to study the dynamics of prelumirhodopsin formation.

    62

    The researchers used computational simulations to model the formation of prelumirhodopsin.

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    The researchers used site-directed mutagenesis to study the effects of specific amino acid changes on prelumirhodopsin.

    64

    The role of water molecules in the formation and stability of prelumirhodopsin is being investigated.

    65

    The structural changes associated with prelumirhodopsin formation are incredibly complex.

    66

    The study aims to determine the activation energy required for the formation of prelumirhodopsin.

    67

    The study aims to develop new strategies for preventing the formation of abnormal prelumirhodopsin.

    68

    The study aims to elucidate the role of prelumirhodopsin in retinal diseases.

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    The study aims to identify the factors that contribute to the stability of prelumirhodopsin.

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    The study aims to identify the key factors that control the formation of prelumirhodopsin.

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    The study aims to identify the key molecules that interact with prelumirhodopsin.

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    The study aims to understand the role of prelumirhodopsin in the adaptation of the eye to different light levels.

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    The study aims to understand the role of prelumirhodopsin in the development of retinal diseases.

    74

    The study aims to understand the role of prelumirhodopsin in the perception of color.

    75

    The study explored the impact of membrane lipids on prelumirhodopsin's behavior.

    76

    The study explores the potential of using prelumirhodopsin as a biosensor.

    77

    The study explores the potential of using prelumirhodopsin as a component of artificial visual systems.

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    The study explores the potential of using prelumirhodopsin as a model for studying other biological systems.

    79

    The study explores the potential of using prelumirhodopsin as a sensor for detecting light.

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    The study explores the potential of using prelumirhodopsin as a target for new drugs.

    81

    The study explores the potential of using prelumirhodopsin as a target for new therapies.

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    The study explores the potential of using prelumirhodopsin as a tool for studying the brain.

    83

    The study focused on the kinetics of prelumirhodopsin formation under varying light intensities.

    84

    The study revealed that the formation of prelumirhodopsin is a highly efficient process.

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    The synthesis of artificial rhodopsin analogs allows for controlled manipulation of prelumirhodopsin.

    86

    The team is developing inhibitors that target the formation of prelumirhodopsin.

    87

    The team is using advanced computational methods to simulate the dynamics of prelumirhodopsin.

    88

    The team is working on developing new methods for analyzing the structure of prelumirhodopsin.

    89

    The team is working on developing new methods for manipulating the formation of prelumirhodopsin.

    90

    The team is working on developing new models for simulating the formation of prelumirhodopsin.

    91

    The team is working on developing new techniques for imaging prelumirhodopsin in real-time.

    92

    The team is working on developing new technologies for studying the formation of prelumirhodopsin.

    93

    The team is working on developing new ways to control the formation of prelumirhodopsin.

    94

    The team is working on developing new ways to visualize the formation of prelumirhodopsin.

    95

    The transient nature of prelumirhodopsin necessitates the use of advanced spectroscopic methods.

    96

    The vibrational modes of prelumirhodopsin provide insights into its structure.

    97

    Theoretical calculations predicted the structure of prelumirhodopsin before experimental verification.

    98

    Understanding prelumirhodopsin is crucial for unraveling the mechanisms of phototransduction.

    99

    Understanding the properties of prelumirhodopsin is key to designing better artificial retinas.

    100

    We observed the accumulation of prelumirhodopsin at high light intensities.