EMD-40185
Representative cryo-electron tomogram of pRLB-540 mixed with liposomes at pH 8.0
EMD-40185
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Map released: 13/09/2023
Last modified: 08/11/2023
Sample Organism:
synthetic construct
Sample: pRLB-540 mixed with DOPC lipids (pH 8.0)
Deposition Authors: Croft JT
,
Lee KK
Sample: pRLB-540 mixed with DOPC lipids (pH 8.0)
Deposition Authors: Croft JT
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De novo design of monomeric helical bundles for pH-controlled membrane lysis.
Goldbach N
,
Benna I,
Wicky BIM,
Croft JT
,
Carter L
,
Bera AK,
Nguyen H,
Kang A,
Sankaran B,
Yang EC
,
Lee KK
,
Baker D
(2023) Protein Sci , 32 , e4769 - e4769
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(2023) Protein Sci , 32 , e4769 - e4769
Abstract:
Targeted intracellular delivery via receptor-mediated endocytosis requires the delivered cargo to escape the endosome to prevent lysosomal degradation. This can in principle be achieved by membrane lysis tightly restricted to endosomal membranes upon internalization to avoid general membrane insertion and lysis. Here, we describe the design of small monomeric proteins with buried histidine containing pH-responsive hydrogen bond networks and membrane permeating amphipathic helices. Of the 30 designs that were experimentally tested, all expressed in Escherichia coli, 13 were monomeric with the expected secondary structure, and 4 designs disrupted artificial liposomes in a pH-dependent manner. Mutational analysis showed that the buried histidine hydrogen bond networks mediate pH-responsiveness and control lysis of model membranes within a very narrow range of pH (6.0-5.5) with almost no lysis occurring at neutral pH. These tightly controlled lytic monomers could help mediate endosomal escape in designed targeted delivery platforms.
Targeted intracellular delivery via receptor-mediated endocytosis requires the delivered cargo to escape the endosome to prevent lysosomal degradation. This can in principle be achieved by membrane lysis tightly restricted to endosomal membranes upon internalization to avoid general membrane insertion and lysis. Here, we describe the design of small monomeric proteins with buried histidine containing pH-responsive hydrogen bond networks and membrane permeating amphipathic helices. Of the 30 designs that were experimentally tested, all expressed in Escherichia coli, 13 were monomeric with the expected secondary structure, and 4 designs disrupted artificial liposomes in a pH-dependent manner. Mutational analysis showed that the buried histidine hydrogen bond networks mediate pH-responsiveness and control lysis of model membranes within a very narrow range of pH (6.0-5.5) with almost no lysis occurring at neutral pH. These tightly controlled lytic monomers could help mediate endosomal escape in designed targeted delivery platforms.