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Protein and Protein Structure02:15

Protein and Protein Structure

Proteins are one of the most abundant organic molecules in living systems and have the most diverse range of functions of all macromolecules. Proteins may be structural, regulatory, contractile, or protective. They may serve in transport, storage, or membranes; or they may be toxins or enzymes. Their structures, like their functions, vary greatly. They are all, however, amino acid polymers arranged in a linear sequence.
A protein's shape is critical to its function. For example, an enzyme can...
Membrane Proteins01:30

Membrane Proteins

Plasma membranes have integral transmembrane proteins involved in facilitated transport. These proteins are collectively referred to as transport proteins, and they function as either channels for the material or as carriers themselves. Channel proteins have hydrophilic domains exposed to the intracellular and extracellular fluids and a hydrophilic channel through their core that provides a hydrated opening for solutes to pass through the membrane layers. Passage through the channel allows...
Protein Glycosylation01:25

Protein Glycosylation

Glycosylation, the most common post-translational modification for proteins, serves diverse functions. Adding sugars to proteins makes the proteins more resistant to proteolytic digestion. Glycosylated proteins can act as markers and receptors to promote cell-cell adhesion. Additionally, they have many essential quality control functions in the cell, such as correct protein folding and facilitating transport of misfolded proteins to the cytosol, which can be degraded.
Glycosylation occurs in...
Oligosaccharide Assembly01:24

Oligosaccharide Assembly

Protein glycosylation starts in the ER lumen and continues in the Golgi apparatus. Glycosyltransferases catalyze the addition of sugar molecules or glycosylation of proteins. Usually, these enzymes add sugars to the hydroxyl groups of selected serine or threonine residues to form O-linked glycans or the amino groups of asparagine residues to form N-linked glycans. Different positions on the same polypeptide chain can contain differently linked glycans.
Multiple sugar molecules that may or may...
Glucose Transporters01:27

Glucose Transporters

Glucose transporters facilitate the transport of glucose across the cell membrane. In addition to glucose, some glucose transporters can also aid the movement of other hexoses such as fructose, mannose, and galactose.
Facilitated diffusion-glucose transporters (GLUTs) are encoded by the solute-linked carrier (SLC) family 2, subfamily A gene family, or SLC2A. The 14 GLUT protein members are distributed into three classes:
Structures of Carboxylic Acid Derivatives01:28

Structures of Carboxylic Acid Derivatives

Structure of Carboxylic Acid Derivatives
Carboxylic acid derivatives contain an acyl group attached to a heteroatom such as chlorine, oxygen, or nitrogen. The carbonyl carbon and oxygen are both sp2-hybridized with an unhybridized p orbital.
The three sp2 orbitals of the carbonyl carbon form three σ bonds, one each with the carbonyl oxygen, the α carbon, and the heteroatom, whereas the other two sp2 orbitals of the carbonyl oxygen are occupied by the lone pairs. Further, the unhybridized p...

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Chemo-enzymatic Synthesis of N-glycans for Array Development and HIV Antibody Profiling
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Bases estructurales para la especificidad de transferencia de glicosfingolipidos.

Lucy Malinina1, Margarita L Malakhova, Alexei Teplov

  • 1Structural Biology Program, Memorial Sloan-Kettering Cancer Center, New York, New York 10021, USA.

Nature
|August 27, 2004
PubMed
Resumen

Las proteínas de transferencia de glucolipidos de mamíferos (GLTP) se unen a los glucosfingolipidos utilizando una estructura helicoidal única. Este mecanismo explica cómo las GLTP transfieren lípidos entre membranas, impactando los procesos celulares.

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Área de la Ciencia:

  • Biología estructural Biología estructural.
  • La bioquímica es la bioquímica.
  • Biología celular Biología celular.

Sus antecedentes:

  • Las proteínas de transferencia de lípidos (LTP) son cruciales para la dinámica de la membrana, incluido el tráfico de vesículas y la transducción de señales.
  • Las proteínas de transferencia de glicolipidos de mamíferos (GLTP) regulan las funciones celulares a través de los glucosfingolipidos, afectando procesos como la diferenciación, la proliferación y la neurodegeneración.

Objetivo del estudio:

  • Para dilucidar la base estructural de la unión y transferencia de los glucosfingolipidos por los GLTP de mamíferos.
  • Comprender los mecanismos moleculares que subyacen al papel de la GLTP en los procesos celulares mediados por lípidos.

Principales métodos:

  • Se utilizó cristalografía de rayos X para determinar las estructuras de apo-GLTP y GLTP ligado a la lactosilceramida a alta resolución (1,65 Å y 1,95 Å, respectivamente).
  • Se realizaron análisis mutacionales y funcionales de los residuos clave dentro de la estructura de la GLTP.

Principales resultados:

  • Las estructuras cristalinas revelan una novedosa topología de dos capas todo-alfa-helical donde los glucosfingolipidos están unidos.
  • La especificidad de los glicosfingolipidos está determinada por la unión de hidrógeno e interacciones hidrofóbicas en el centro de reconocimiento GLTP y la encapsulación de la cadena lipídica dentro de un túnel hidrofóbico.
  • Un mecanismo de cerradura conformacional similar a una hendidura que involucra bucles interhelicales y una hélice alfa facilita la entrada y salida de lípidos.

Conclusiones:

  • El estudio proporciona un marco estructural para comprender cómo las GLTP se unen y liberan los glucosfingolipidos.
  • Este mecanismo es esencial para la transferencia y presentación de la intermembrana lipídica, ofreciendo información sobre las funciones reguladoras de GLTP en los procesos celulares.