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Cyclic synthesis

Preferential local cyclic synthesis/degradation of kinetically stable... [Pg.435]

Cyclical synthesis/degradation of proteins in cells. Schimke treated the rate of protein synthesis as a zero-order process and the rate of protein degradation as a first-order reaction ... [Pg.581]

Fig. 14-9 A model for the cyclic synthesis of ATP by ATP synthase coupled to conformation changes in the P subunits brought about by proton translocation through the F0 complex. ATP synthesis occurs in the tightly bound" (T) state, but the ATP can only be released from the open (O) state. The energy of the electrochemical gradient is used to switch the T to the O state. The third state, L, can bind ADP. Fig. 14-9 A model for the cyclic synthesis of ATP by ATP synthase coupled to conformation changes in the P subunits brought about by proton translocation through the F0 complex. ATP synthesis occurs in the tightly bound" (T) state, but the ATP can only be released from the open (O) state. The energy of the electrochemical gradient is used to switch the T to the O state. The third state, L, can bind ADP.
During the process of synthesis of the cyclic molecule, the yield can be decreased when the linear polymerization for each monomer occurs. However, the yield can be improved by means of the introduction of objects into reaction, further forming rotaxane with the cyclic molecule, resulting in the cyclic synthesis predominating in the reaction. [Pg.204]


See other pages where Cyclic synthesis is mentioned: [Pg.176]    [Pg.223]    [Pg.210]    [Pg.591]    [Pg.277]    [Pg.653]    [Pg.188]    [Pg.53]    [Pg.860]    [Pg.695]    [Pg.239]    [Pg.242]    [Pg.256]    [Pg.215]    [Pg.234]   
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See also in sourсe #XX -- [ Pg.302 ]

See also in sourсe #XX -- [ Pg.92 ]

See also in sourсe #XX -- [ Pg.2 , Pg.6 , Pg.69 , Pg.806 ]




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2-Imino cyclic ethers synthesis

Acetal formation cyclic acetals synthesis

Acetals, cyclic synthesis

Allyl acetates cyclic ether synthesis

Amines cyclic, synthesis

Amines, cyclic aldehydes, synthesis

Amines, cyclic amine oxides, synthesis

Cascade cyclic compound synthesis

Chemical synthesis voltammetry, cyclic

Cyclic 2-alkoxycarbonyl synthesis

Cyclic AMP synthesis

Cyclic aminals synthesis

Cyclic amino acids synthesis

Cyclic anhydrides synthesis from dicarboxylic acids

Cyclic carbodiimides synthesis

Cyclic carbonate functional polymer synthesis

Cyclic carbonates synthesis mechanism

Cyclic carbonates, synthesis

Cyclic compounds cyclobutanes, synthesis

Cyclic compounds cyclopentanes, synthesis

Cyclic compounds cyclopropanes, synthesis

Cyclic compounds synthesis

Cyclic dipeptides, synthesis

Cyclic enamines, synthesis

Cyclic ether synthesis silver® oxide

Cyclic ethers Williamson synthesis

Cyclic ethers, synthesis

Cyclic ethers, synthesis with

Cyclic guanidine alkaloid synthesis

Cyclic hemiacetals synthesis

Cyclic hydrocarbons, synthesis

Cyclic hydroxamic acids synthesis

Cyclic ketene acetals, synthesis

Cyclic oligopeptides synthesis

Cyclic oligosilanes, synthesis

Cyclic peptide automated synthesis

Cyclic peptide oligomers synthesis

Cyclic peptide synthesis

Cyclic peptidomimetics synthesis

Cyclic peroxides synthesis

Cyclic phosphinic amides, synthesis

Cyclic phosphonium salts synthesis

Cyclic polymer synthesis

Cyclic rhodium -catalyzed synthesis

Cyclic stannylenes, synthesis

Cyclic sulfates synthesis

Cyclic synthesis using microwaves

Cyclic systems de novo synthesis

Cyclic systems synthesis by modifications

Cyclic thioethers, synthesis

Cyclic thionocarbonates, synthesis

Cyclic trithiocarbonates, synthesis

Cyclic vinylsilanes, synthesis

Cyclic voltammetry synthesis

Decarboxylation cyclic ketone synthesis

Dicarboxylic acids ketones, cyclic, synthesis

Electrochemical synthesis cyclic voltammetry

Fischer carbene complexes, cyclic synthesis

Imines cyclic, synthesis

Ketones cyclic, 5-membered: synthesis

Ketones cyclic, synthesis

Nickel-Catalyzed Synthesis of Cyclic Compounds

Nitroalkanes cyclic, synthesis

Organic cyclic carbonate synthesis

PARHAM Cyclic ether synthesis

Peptides, cyclic thioester synthesis

Polypeptide synthesis cyclic

Radical Reactions. Newly Emerged Tools for the Synthesis of Cyclic Compounds

Solid-phase synthesis cyclic peptides

Stereoselective synthesis cyclic ethers

Sulfamate synthesis, cyclic

Syntheses of 1,2-Unsaturated Cyclic Compounds and Related Derivatives

Syntheses of 2,3-Unsaturated Cyclic Compounds

Syntheses of Cyclic Peroxides with Oxygen

Synthesis and Polymerizability of Cyclic Acetals

Synthesis and Polymerization of Cyclic Polyester Oligomers

Synthesis by Cyclic Voltammetry

Synthesis cyclic alkynes

Synthesis cyclic ureas

Synthesis from Cyclic Precursors

Synthesis from Various Cyclic Systems

Synthesis from cyclic carbonates

Synthesis of Acyclic, Cyclic, and Heterocyclic Alkenes

Synthesis of Cyclic Boriozirconocenes

Synthesis of Cyclic Carbonates

Synthesis of Cyclic Carbonates from CO2 and Epoxides

Synthesis of Cyclic Carbonates from Propargylic Alcohols

Synthesis of Cyclic Hydroxamic Acids

Synthesis of Cyclic Peptides

Synthesis of Cyclic Peptides on Solid Supports

Synthesis of Cyclic Phosphazenes

Synthesis of Cyclic Polymers

Synthesis of Cyclically Protected Side Chains

Synthesis of Highly Hindered Cyclic Amines

Synthesis of Linear and Cyclic Carbonates

Synthesis of Monomeric Cyclic Carbonates

Synthesis of Organic Cyclic Carbonates

Synthesis of cyclic acetals

Synthesis of cyclic compounds

Synthesis of cyclic dimer

Synthesis via Cyclic Dipeptides

Synthesis, carboxylic acids cyclic hydrocarbons

The Synthesis of Cyclic Compounds

The Synthesis of Large Cyclic Molecules

The Synthesis of Linear Polymeric Esters from Cyclic Trimethylene Acetals and Dibasic Carboxylic Acids

Unsaturated alcohols cyclic, synthesis

Unsaturated aldehydes cyclic, synthesis

Unsaturated ketones cyclic, synthesis

Vinyl cyclic acetal, synthesis

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