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[45] Engineering Responsive Supramolecular Biomaterials: Toward Smart Therapeutics
[45] Engineering Responsive Supramolecular Biomaterials: Toward Smart Therapeutics

[45] Engineering Responsive Supramolecular Biomaterials: Toward Smart Therapeutics

M.J. Webber. Bioengineering and Translational Medicine (2016)

[44] Supramolecular PEGylation of Biopharmaceuticals

[44] Supramolecular PEGylation of Biopharmaceuticals

M.J. Webber*, E.A. Appel*, B. Vinciguerra, A.B. Cortinas, L.S. Thapa, S. Jhunjhunwala, L. Isaacs, R. Langer, D.G. Anderson. Proceedings of the National Academy of Sciences (2016)

[43] Polymer-Lipid Nanoparticles for Systemic Delivery of mRNA to the Lungs

[43] Polymer-Lipid Nanoparticles for Systemic Delivery of mRNA to the Lungs

J.C. Kaczmarek, A.K. Patel, K.J. Kauffman, O.S. Fenton, M.J. Webber, M.W. Heartlein, F. DeRosa, D.G. Anderson. Angewandte Chemie International Edition (2016)

[42] Injectable and Glucose-Responsive Hydrogels Based on Boronic Acid-Glucose Complexation

[42] Injectable and Glucose-Responsive Hydrogels Based on Boronic Acid-Glucose Complexation

Y. Dong, W. Wang, O. Veiseh, E.A. Appel, K. Xue, M.J. Webber, B. Tang, X. Yang, G.C. Weir, R. Langer, D.G. Anderson. Langmuir (2016)

[41] Efficacy and Immunogenicity of Pseudouridine-Modified mRNA Delivered Systemically with Lipid Nanoparticles In Vivo

[41] Efficacy and Immunogenicity of Pseudouridine-Modified mRNA Delivered Systemically with Lipid Nanoparticles In Vivo

K.J. Kauffman, F.F. Mur, S. Jhunjhunwala, J.C. Kaczmarek, J.E. Hurtado, J.H. Yang, M.J. Webber, P.S. Kowalski, M.W. Heartlein, F. DeRosa, D.G. Anderson. Biomaterials (2016)

[40] Materials for Non-Viral Intracellular Delivery of Messenger RNA Therapeutics

[40] Materials for Non-Viral Intracellular Delivery of Messenger RNA Therapeutics

K.J. Kauffman, M.J. Webber, D.G. Anderson. Journal of Controlled Release (2016)

[39] Poly(glycoamidoamine)-lipid brushes for systemic siRNA and mRNA delivery in vivo

[39] Poly(glycoamidoamine)-lipid brushes for systemic siRNA and mRNA delivery in vivo

Y. Dong, J.R. Dorkin, W. Wang, P.H. Chang, M.J. Webber, B.C. Tang, I. Abutbul-Ionita, D. Danino, R. Langer, D.G. Anderson. Nano Letters (2016)

[38] Supramolecular Biomaterials

[38] Supramolecular Biomaterials

M.J. Webber*, E.A. Appel*, E.W. Meijer, R. Langer. Nature Materials (2016)

[37] Injectable Self-Healing Glucose-Responsive Hydrogels with pH-Regulated Mechanical Properties

[37] Injectable Self-Healing Glucose-Responsive Hydrogels with pH-Regulated Mechanical Properties

V. Yesilyurt, M.J. Webber, E.A. Appel, C. Godwin, R. Langer, D.G. Anderson. Advanced Materials (2016)

[36] Smart Approaches to Glucose-Responsive Drug Delivery

[36] Smart Approaches to Glucose-Responsive Drug Delivery

M.J. Webber, D.G. Anderson. Journal of Drug Targeting (2015)

[35] Engineering Synthetically Modified Insulin for Glucose-Responsive Diabetes Therapy

[35] Engineering Synthetically Modified Insulin for Glucose-Responsive Diabetes Therapy

M.J. Webber, D.G. Anderson, R. Langer. Expert Reviews in Endocrinology and Metabolism. (2015)

[34] In Vivo Compatibility of Graphene Oxide With Differing Oxidation States

[34] In Vivo Compatibility of Graphene Oxide With Differing Oxidation States

S.A. Sydlik*, S. Jhunjhunwala*, M.J. Webber*, D.G. Anderson, R. Langer. ACS Nano (2015)

[33] Glucose-Responsive Insulin Activity by Covalent Modification with Aliphatic Phenylboronic Acid Conjugates

[33] Glucose-Responsive Insulin Activity by Covalent Modification with Aliphatic Phenylboronic Acid Conjugates

D.H.-C. Chou*, M.J. Webber*, B.C. Tang*, A.B. Lin, L.S. Thapa, D. Deng, J.V. Truong, A.B. Cortinas, R. Langer, D.G. Anderson. Proceedings of the National Academy of Sciences (2015)

[32] A Perspective on the Clinical Translation of Scaffolds for Tissue Engineering

[32] A Perspective on the Clinical Translation of Scaffolds for Tissue Engineering

M.J. Webber, O.F. Khan, S.A. Sydlik, B.C. Tang, R. Langer. Annals of Biomedical Engineering (2015)

[31] Neutrophil Responses to Sterile Implant Materials

[31] Neutrophil Responses to Sterile Implant Materials

S. Jhunjhunwala, S. Aresta-DaSilva, K. Tang, D. Alvarez, M.J. Webber, B.C. Tang, D.M. Lavin, O. Veiseh, J.C. Doloff, S. Bose, A. Vegas, M. Ma, G. Sahay, A. Chiu, A. Bader, E. Langan, S. Siebert, J. Li, D.L. Greiner, P.E. Newburger, U.H. von Andrian, R. Langer, D.G. Anderson. PLOS One (2015)

[30] Covalent Incorporation of Trehalose within Hydrogels for Enhanced Long-Term Functional Stability and Controlled Release of Biomacromolecules

[30] Covalent Incorporation of Trehalose within Hydrogels for Enhanced Long-Term Functional Stability and Controlled Release of Biomacromolecules

T.M. O’Shea, M.J. Webber, A.A. Aimetti, R. Langer. Advanced Healthcare Materials (2015)

[29] Dendrimer-Inspired Nanomaterials for the In Vivo Delivery of siRNA to Lung Vasculature

[29] Dendrimer-Inspired Nanomaterials for the In Vivo Delivery of siRNA to Lung Vasculature

O.F. Khan, E.W. Zaia, S. Jhunjhunwala,, W. Xue, W. Cai, D.S. Yun, C. Barnes, J.E. Dahlman, Y. Dong, J.M. Pelet, M.J. Webber, J. Tsosie, T.E. Jacks, R. Langer, D.G. Anderson. Nano Letters (2015)

[28] Self-Assembled Hydrogels Utilizing Polymer-Nanoparticle Interactions

[28] Self-Assembled Hydrogels Utilizing Polymer-Nanoparticle Interactions

E.A. Appel*, M.W. Tibbitt*, M.J. Webber, B.A. Mattix, O. Veiseh, R. Langer. Nature Communications (2015) 

[27] Enhanced Potency of Cell-based Therapy for Ischemic Tissue Repair Using an Injectable Bioactive Epitope-Presenting Nanofiber Support Matrix

[27] Enhanced Potency of Cell-based Therapy for Ischemic Tissue Repair Using an Injectable Bioactive Epitope-Presenting Nanofiber Support Matrix

J. Tongers*, M.J. Webber*, E.E. Vaughan, E. Sleep, M.A. Renault, J.G. Roncalli, E. Klyachko, T. Thorne, Y. Yu, K. Theres-Marquardt, C.E. Kamide, A. Ito, S. Misener, M. Millay, T. Liu, K. Jujo, G. Qin, D.W. Losordo, S.I. Stupp, R. Kishore. Journal of Molecular and Cellular Cardiology (2014)

[26] Ionizable Amphiphilic Dendrimer-Based Nanomaterials with Alkyl Chain-Substituted Amines for Tunable siRNA Delivery to the Liver Endothelium In Vivo

[26] Ionizable Amphiphilic Dendrimer-Based Nanomaterials with Alkyl Chain-Substituted Amines for Tunable siRNA Delivery to the Liver Endothelium In Vivo

O.F. Khan, E.W. Zaia, H. Yin, R. Bogorad, J. Pelet, M.J. Webber, I. Zhuang, J.E. Dahlman, R. Langer, D.G. Anderson. Angewandte Chemie International Edition (2014)

[25] The Promotion of Functional Urinary Bladder Regeneration Using Anti-inflammatory Nanofibers

[25] The Promotion of Functional Urinary Bladder Regeneration Using Anti-inflammatory Nanofibers

M.I. Bury, N.J. Fuller, J.W. Meisner, M.D. Hofer, M.J. Webber, L.W. Chow, S. Prasad, H. Thakar, X. Yue, V.S. Menon, E.C. Diaz, S.I. Stupp, E.Y. Chang, A.K. Sharma. Biomaterials (2014)

[24] In vivo Endothelial siRNA Delivery Using Polymeric Nanoparticles with Low Molecular Weight

[24] In vivo Endothelial siRNA Delivery Using Polymeric Nanoparticles with Low Molecular Weight

J.E. Dahlman*, C. Barnes*, O. Khan, A. Thiriot, S. Jhunjhunwala, T.E. Shaw, Y. Xing, H.B. Sager, G. Sahay, L. Speciner, A. Bader, R.L. Bogorad, H. Yin, T. Racie, Y. Dong, S. Jiang, D. Seedorf, A. Dave, K. S. Sandu, M.J. Webber, T. Novobrantseva, V.M. Ruda, A.K.R. Lytton-Jean, C.G. Levins, B. Kalish, D.K. Mudge, M. Perez, L. Abezgauz, P. Dutta, L. Smith, K Charisse, M.W. Kieran, K. Fitzgerald, M. Nahrendorf, D. Danino, R.M. Tuder, U.H. von Andrian, A. Akinc, A. Schroeder, D. Panigrahy, V. Kotelianski, R. Langer, D.G. Anderson. Nature Nanotechnology (2014)

[23] Synergistic Regulation of Cerebellar Purkinje Neuron Development by Laminin Epitopes and Collagen on an Artificial Matrix

[23] Synergistic Regulation of Cerebellar Purkinje Neuron Development by Laminin Epitopes and Collagen on an Artificial Matrix

S. Sur, M.O. Guler, M.J. Webber, E.T. Pashuck, M. Ito, S.I. Stupp, T. Launey. Biomaterials Science (2014)

[22] Supramolecular Nanofibers of Peptide Amphiphiles for Medicine

[22] Supramolecular Nanofibers of Peptide Amphiphiles for Medicine

M.J. Webber, E.J. Berns, S.I. Stupp. Israel Journal of Chemistry (2013) (article highlighted on issue cover)

[21] Drug Delivery Interfaces in the 21st Century: From Science Fiction Ideas to Viable Technologies

[21] Drug Delivery Interfaces in the 21st Century: From Science Fiction Ideas to Viable Technologies

B. Chertok, M.J. Webber, M.D. Succi, R. Langer. Molecular Pharmaceutics (2013)

[20] Tuning of Supramolecular Mechanics to Guide Neuron Development

[20] Tuning of Supramolecular Mechanics to Guide Neuron Development

S. Sur*, C.J. Newcomb*, M.J. Webber, S.I. Stupp. Biomaterials (2013)

[19] Controlled Release of Dexamethasone From Peptide Nanofiber Gels to Modulate Inflammatory Response

[19] Controlled Release of Dexamethasone From Peptide Nanofiber Gels to Modulate Inflammatory Response

M.J. Webber*, J.B. Matson*, V.K. Tamboli, S.I. Stupp. Biomaterials (2012)

[18] A Peptide-Based Material for Therapeutic Carbon Monoxide Delivery

[18] A Peptide-Based Material for Therapeutic Carbon Monoxide Delivery

J.B. Matson*, M.J. Webber*, V.K. Tamboli, B. Weber, S.I. Stupp. Soft Matter (2012)

[17] Photodynamic Control of Bioactivity in a Self-Assembled Matrix

[17] Photodynamic Control of Bioactivity in a Self-Assembled Matrix

S. Sur*, J.B. Matson*, M.J. Webber, C.J. Newcomb, S.I. Stupp. ACS Nano (2012)

[16] Growth Factor Release from a Chemically Modified Elastomeric Poly(1,8-octanediol-co-citrate) Thin Film Promotes Angiogenesis in vivo

[16] Growth Factor Release from a Chemically Modified Elastomeric Poly(1,8-octanediol-co-citrate) Thin Film Promotes Angiogenesis in vivo

A.K. Sharma, M.I. Bury, N.J. Fuller, D.I. Rozkiewicz, P.V. Hota, D.M. Kollhoff, M.J. Webber, N. Tapaskar, J.W. Meisner, P.J. Lariviere, S. DeStafano, D. Wang, G.A. Ameer, E.Y. Cheng. Journal of Biomedical Materials Research A (2012) (article featured on issue cover)

[15] Switching of Self-Assembly in a Peptide Nanostructure With a Specific Enzyme

[15] Switching of Self-Assembly in a Peptide Nanostructure With a Specific Enzyme

M.J. Webber, C.J. Newcomb, R. Bitton, S.I. Stupp. Soft Matter (2011) (article featured as Soft Matter ‘Hot Article’)

[14] Supramolecular Nanostructures that Mimic VEGF as a Strategy for Ischemic Tissue Repair

[14] Supramolecular Nanostructures that Mimic VEGF as a Strategy for Ischemic Tissue Repair

M.J. Webber*, J. Tongers*, C.J. Newcomb, K. Theres-Marquardt, J. Bauersachs, D.W. Losordo, S.I. Stupp. Proceedings of the National Academy of Sciences (2011) (article featured on issue cover)

[13] Scaffold Vascularization in vivo Driven by Primary Human Osteoblasts in Concert with Host Inflammatory Cells

[13] Scaffold Vascularization in vivo Driven by Primary Human Osteoblasts in Concert with Host Inflammatory Cells

S. Ghanaati*, R.E. Unger*, M.J. Webber, M. Barbeck, C. Orth, J.A. Kirkpatrick, P. Booms, A. Motta, C. Migliaresi, R.A. Sader, C.J. Kirkpatrick. Biomaterials (2011)

[12] Rapid Vascularization of Starch-Poly(Caprolactone) in vivo by Outgrowth Endothelial Cells in Co-culture with Primary Osteoblasts

[12] Rapid Vascularization of Starch-Poly(Caprolactone) in vivo by Outgrowth Endothelial Cells in Co-culture with Primary Osteoblasts

S. Ghanaati*, S. Fuchs*, M.J. Webber, C. Orth, M. Barbeck, R.L. Reis, C.J. Kirkpatrick. Journal of Tissue Engineering and Regenerative Medicine (2011)

[11] Evaluation of the Tissue Reaction to a New Bilayered Collagen Matrix In Vivo and its Translation to the Clinic

[11] Evaluation of the Tissue Reaction to a New Bilayered Collagen Matrix In Vivo and its Translation to the Clinic

S. Ghanaati, M. Schlee, M.J. Webber, I. Willershausen, M. Barbeck, E. Balic, C. Gorlach, S.I. Stupp, R.A. Sader, C.J. Kirkpatrick. Biomedical Materials (2011) 

[10] A Bioactive Self-assembled Membrane to Promote Angiogenesis

[10] A Bioactive Self-assembled Membrane to Promote Angiogenesis

L.W. Chow*, R. Bitton*, M.J. Webber,  D. Carvajal, K. Shull, A. Shrama, S.I. Stupp. Biomaterials (2011)

[9] Capturing the Stem Cell Paracrine Effect Using Heparin-Presenting Nanofibres to Treat Cardiovascular Disease

[9] Capturing the Stem Cell Paracrine Effect Using Heparin-Presenting Nanofibres to Treat Cardiovascular Disease

M.J. Webber, X. Han, S.N. Murthy, K. Rajangam, S.I. Stupp, J.W. Lomasney. Journal of Tissue Engineering and Regenerative Medicine (2010)

[8] Emerging Peptide Nanomedicine to Regenerate Tissues and Organs

[8] Emerging Peptide Nanomedicine to Regenerate Tissues and Organs

M.J. Webber, J.A. Kessler, S.I. Stupp. Journal of Internal Medicine (2010) (article featured on issue cover)

[7] Development of Bioactive Peptide Amphiphiles for Therapeutic Cell Delivery

[7] Development of Bioactive Peptide Amphiphiles for Therapeutic Cell Delivery

M.J. Webber*, J. Tongers*, M.A. Renault, J.G. Roncalli, D.W. Losordo, S.I. Stupp. Acta Biomaterialia (2010) (reprinted in 2015 special issue  highlighting influential past papers)

[6] Fine-Tuning Scaffolds for Tissue Regeneration: Effects of Formic Acid Processing on Tissue Reaction to Silk Fibroin

[6] Fine-Tuning Scaffolds for Tissue Regeneration: Effects of Formic Acid Processing on Tissue Reaction to Silk Fibroin

S. Ghanaati, C. Orth. R.E. Unger, M. Barbeck, M.J. Webber, A. Motta, C. Migliaresi, C.J. Kirkpatrick. Journal of Tissue Engineering and Regenerative Medicine (2010)

[5] Self-assembly of Peptide Amphiphiles: From Molecules to Nanostructures to Biomaterials

[5] Self-assembly of Peptide Amphiphiles: From Molecules to Nanostructures to Biomaterials

H. Cui, M.J. Webber, S.I. Stupp. Biopolymers (2010) (article featured on issue cover)

[4] Dynamic in vivo Biocompatibility of Angiogenic Peptide Amphiphile Nanofibers

[4] Dynamic in vivo Biocompatibility of Angiogenic Peptide Amphiphile Nanofibers

S. Ghanaati*, M.J. Webber*, R.E. Unger, C. Orth, J.F. Hulvat, S.E. Kiehna, M. Barbeck, A. Rasic, S.I. Stupp, C.J. Kirkpatrick. Biomaterials (2009)

[3] Embryonic Stem Cells Overexpressing Pitx2c Engraft in Infarcted Myocardium and Improve Cardiac Function

[3] Embryonic Stem Cells Overexpressing Pitx2c Engraft in Infarcted Myocardium and Improve Cardiac Function

A. Guddati, J. Otero, E. Kessler, G. Aistrup, J. Wasserstrom, X. Han, M.J. Webber, S.I. Stupp, J.W. Lomasney, J.A. Kessler. International Heart Journal. (2009)

[2] Bioengineering to Enhance Progenitor Cell Therapies

[2] Bioengineering to Enhance Progenitor Cell Therapies

J. Tongers, M.J. Webber, D.W. Losordo. Texas Heart Institute Journal (2009)

[1] Uptake of Calcium Phosphate Nanoshells by Osteoblasts and Their Effect on Growth and Differentiation

[1] Uptake of Calcium Phosphate Nanoshells by Osteoblasts and Their Effect on Growth and Differentiation

S.M. Schmidt, K.A. Moran, A.M. Tweed-Kent, J.L. Slosar, M.J. Webber, M.J. McCready, C. Deering, J.M. Veranth, A.E. Ostafin. Journal of Biomedical Materials Research A (2008)

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Previous Next
[45] Engineering Responsive Supramolecular Biomaterials: Toward Smart Therapeutics
[44] Supramolecular PEGylation of Biopharmaceuticals
[43] Polymer-Lipid Nanoparticles for Systemic Delivery of mRNA to the Lungs
[42] Injectable and Glucose-Responsive Hydrogels Based on Boronic Acid-Glucose Complexation
[41] Efficacy and Immunogenicity of Pseudouridine-Modified mRNA Delivered Systemically with Lipid Nanoparticles In Vivo
[40] Materials for Non-Viral Intracellular Delivery of Messenger RNA Therapeutics
[39] Poly(glycoamidoamine)-lipid brushes for systemic siRNA and mRNA delivery in vivo
[38] Supramolecular Biomaterials
[37] Injectable Self-Healing Glucose-Responsive Hydrogels with pH-Regulated Mechanical Properties
[36] Smart Approaches to Glucose-Responsive Drug Delivery
[35] Engineering Synthetically Modified Insulin for Glucose-Responsive Diabetes Therapy
[34] In Vivo Compatibility of Graphene Oxide With Differing Oxidation States
[33] Glucose-Responsive Insulin Activity by Covalent Modification with Aliphatic Phenylboronic Acid Conjugates
[32] A Perspective on the Clinical Translation of Scaffolds for Tissue Engineering
[31] Neutrophil Responses to Sterile Implant Materials
[30] Covalent Incorporation of Trehalose within Hydrogels for Enhanced Long-Term Functional Stability and Controlled Release of Biomacromolecules
[29] Dendrimer-Inspired Nanomaterials for the In Vivo Delivery of siRNA to Lung Vasculature
[28] Self-Assembled Hydrogels Utilizing Polymer-Nanoparticle Interactions
[27] Enhanced Potency of Cell-based Therapy for Ischemic Tissue Repair Using an Injectable Bioactive Epitope-Presenting Nanofiber Support Matrix
[26] Ionizable Amphiphilic Dendrimer-Based Nanomaterials with Alkyl Chain-Substituted Amines for Tunable siRNA Delivery to the Liver Endothelium In Vivo
[25] The Promotion of Functional Urinary Bladder Regeneration Using Anti-inflammatory Nanofibers
[24] In vivo Endothelial siRNA Delivery Using Polymeric Nanoparticles with Low Molecular Weight
[23] Synergistic Regulation of Cerebellar Purkinje Neuron Development by Laminin Epitopes and Collagen on an Artificial Matrix
[22] Supramolecular Nanofibers of Peptide Amphiphiles for Medicine
[21] Drug Delivery Interfaces in the 21st Century: From Science Fiction Ideas to Viable Technologies
[20] Tuning of Supramolecular Mechanics to Guide Neuron Development
[19] Controlled Release of Dexamethasone From Peptide Nanofiber Gels to Modulate Inflammatory Response
[18] A Peptide-Based Material for Therapeutic Carbon Monoxide Delivery
[17] Photodynamic Control of Bioactivity in a Self-Assembled Matrix
[16] Growth Factor Release from a Chemically Modified Elastomeric Poly(1,8-octanediol-co-citrate) Thin Film Promotes Angiogenesis in vivo
[15] Switching of Self-Assembly in a Peptide Nanostructure With a Specific Enzyme
[14] Supramolecular Nanostructures that Mimic VEGF as a Strategy for Ischemic Tissue Repair
[13] Scaffold Vascularization in vivo Driven by Primary Human Osteoblasts in Concert with Host Inflammatory Cells
[12] Rapid Vascularization of Starch-Poly(Caprolactone) in vivo by Outgrowth Endothelial Cells in Co-culture with Primary Osteoblasts
[11] Evaluation of the Tissue Reaction to a New Bilayered Collagen Matrix In Vivo and its Translation to the Clinic
[10] A Bioactive Self-assembled Membrane to Promote Angiogenesis
[9] Capturing the Stem Cell Paracrine Effect Using Heparin-Presenting Nanofibres to Treat Cardiovascular Disease
[8] Emerging Peptide Nanomedicine to Regenerate Tissues and Organs
[7] Development of Bioactive Peptide Amphiphiles for Therapeutic Cell Delivery
[6] Fine-Tuning Scaffolds for Tissue Regeneration: Effects of Formic Acid Processing on Tissue Reaction to Silk Fibroin
[5] Self-assembly of Peptide Amphiphiles: From Molecules to Nanostructures to Biomaterials
[4] Dynamic in vivo Biocompatibility of Angiogenic Peptide Amphiphile Nanofibers
[3] Embryonic Stem Cells Overexpressing Pitx2c Engraft in Infarcted Myocardium and Improve Cardiac Function
[2] Bioengineering to Enhance Progenitor Cell Therapies
[1] Uptake of Calcium Phosphate Nanoshells by Osteoblasts and Their Effect on Growth and Differentiation
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