Use of ghost nanovesicles as therapeutics
The present disclosure provides ghost nanovesicles (gNVs) that are deficient in cytosolic components. Methods of making such vesicles and therapeutic uses of such vesicles are also provided. The gNVs may be used in preventing or treating conditions that may benefit from administration of the gNVs. Such conditions include conditions that involve inflammation.
1 . A method of making ghost nanovesicles (gNVs) deficient in cytoplasmic proteins and nucleic acids, the method comprising:
disrupting mesenchymal stem cells (MSCs) to generate vesicles;
separating the vesicles based on density and isolating nanovesicles;
exposing the isolated nanovesicles to an alkaline pH to open the nanovesicles thereby generating plasma membrane sheets;
purifying the plasma membrane sheets; and
applying energy to the purified plasma membrane sheets sufficient to convert the plasma membrane sheets into gNVs.
2 . The method of claim 1 , wherein the gNVs are large gNVs having a diameter of 100 nm-200 nm, wherein the gNVs are small gNVs having a diameter of 40 nm-100 nm, or wherein the gNVs comprise large gNVs having a diameter of 100 nm-200 nm and small gNVs having a diameter of 40 nm-100 nm.
3 . The method of claim 1 , further comprising adding a therapeutic agent to a composition comprising the purified membrane sheets and applying energy to the composition sufficient to convert the plasma membrane sheets into gNVs comprising the therapeutic agent.
4 . The method of claim 3 , wherein the therapeutic agent comprises a small molecule, a peptide, a nucleic acid, or a polypeptide.
5 . The method of claim 3 , wherein the therapeutic agent is an anti-inflammatory agent.
6 . The method of claim 4 , wherein the therapeutic agent is not an anti-inflammatory agent.
7 . The method of claim 1 , wherein the MSCs are human MSCs.
8 . Ghost nanovesicles (gNVs) derived from mesenchymal stem cells (MSCs), wherein the gNVs are deficient in cytoplasmic proteins and nucleic acids and are made by a method comprising:
disrupting the MSCs to generate vesicles;
separating the vesicles based on density and isolating nanovesicles;
exposing the isolated nanovesicles to an alkaline pH to open the nanovesicles thereby generating plasma membrane sheets;
purifying the plasma membrane sheets; and
applying energy to the purified plasma membrane sheets sufficient to convert the plasma membrane sheets into gNVs.
9 . The gNVs of claim 8 , wherein the MSCs are human MSCs.
10 . The gNVs of claim 8 , comprising a therapeutic agent.
11 . The gNVs of claim 10 , wherein the therapeutic agent is an anti-inflammatory agent.
12 . The gNVs of claim 10 , wherein the therapeutic agent comprises a small molecule, a peptide, a nucleic acid, or a polypeptide and is not an anti-inflammatory agent.
13 . A method for reducing level of a pro-inflammatory cytokine in a subject with an inflammatory related condition, the method comprising:
disrupting mesenchymal stem cells (MSCs) to generate vesicles;
separating the vesicles based on density and isolating nanovesicles;
exposing the isolated nanovesicles to an alkaline pH to open the nanovesicles thereby generating plasma membrane sheets;
purifying the plasma membrane sheets;
applying energy to the purified plasma membrane sheets sufficient to convert the plasma membrane sheets into ghost nanovesicles (gNVs);
administering to the subject an amount of the gNVs effective to reduce the level of the proinflammatory cytokine in the subject,
wherein the pro-inflammatory cytokine comprises tumor necrosis factor alpha (TNF-α) or interleukin-6 (IL-6).
14 . The method of claim 13 , wherein the subject is human and the MSCs are human MSCs.
15 . The method of claim 13 , wherein the pro-inflammatory cytokine is TNF-α.
16 . The method of claim 13 , wherein the pro-inflammatory cytokine is IL-6.