SABER for life saving: dynamic peptide hydrogels as a frontier in long-acting therapeutics

Deepak Chaurasiya

Exploration of Biomat-X ›› 2026, Vol. 3 ›› Issue (1) : 101356

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Exploration of Biomat-X ›› 2026, Vol. 3 ›› Issue (1) :101356 DOI: 10.37349/ebmx.2026.101356
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SABER for life saving: dynamic peptide hydrogels as a frontier in long-acting therapeutics
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Abstract

Hydrogels are among the most intensively studied biomaterials for controlled drug delivery, yet translation to routine clinical practice has been limited by rapid diffusion of small molecules and instability of biologics. In their recent report in Nature Nanotechnology (Pogostin et al., 2025, DOI: 10.1038/s41565-025-01981-6), a team from Rice University and collaborators present a nanofibrous supramolecular peptide hydrogel system that addresses these challenges through the incorporation of dynamic covalent chemistry. The SABER (Self-Assembling Boronate Ester Release) platform introduces reversible boronate ester bonds between engineered peptide fibers and boronic acid modified therapeutics, creating a tunable and long-acting drug release system. Proof-of-concept applications included tuberculosis therapy, diabetes management, and prolonged antibody delivery, demonstrating both versatility and clinical relevance. In this Commentary, I situate this advance within the broader trajectory of hydrogel research, highlight the conceptual novelty of dynamic supramolecular interactions, and discuss the opportunities and challenges for clinical translation. I argue that this platform signals a paradigm shift in drug delivery, moving hydrogels from passive depots to dynamic partners in medicine.

Keywords

supramolecular peptide hydrogels / dynamic covalent chemistry / controlled drug release / long-acting therapeutics / biologics delivery / biomaterials engineering

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Deepak Chaurasiya. SABER for life saving: dynamic peptide hydrogels as a frontier in long-acting therapeutics. Exploration of Biomat-X, 2026, 3 (1) : 101356 DOI:10.37349/ebmx.2026.101356

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References

[1]

Hoffman AS. Hydrogels for biomedical applications. Adv Drug Deliv Rev. 2002; 54: 3-12.

[2]

Li J, Mooney DJ. Designing hydrogels for controlled drug delivery. Nat Rev Mater. 2016; 1: 16071.

[3]

Appel EA, Tibbitt MW, Webber MJ, Mattix BA, Veiseh O, Langer R. Self-assembled hydrogels utilizing polymer-nanoparticle interactions. Nat Commun. 2015; 6: 6295.

[4]

Wang H, Heilshorn SC. Adaptable hydrogel networks with reversible linkages for tissue engineering. Adv Mater. 2015; 27: 3717-36.

[5]

Webber MJ, Appel EA, Meijer EW, Langer R. Supramolecular biomaterials. Nat Mater. 2016; 15: 13-26.

[6]

McClements DJ. Encapsulation, protection, and delivery of bioactive proteins and peptides using nanoparticle and microparticle systems: A review. Adv Colloid Interface Sci. 2018; 253: 1-22.

[7]

Seliktar D. Designing cell-compatible hydrogels for biomedical applications. Science. 2012; 336: 1124-8.

[8]

Peppas NA, Bures P, Leobandung W, Ichikawa H. Hydrogels in pharmaceutical formulations. Eur J Pharm Biopharm. 2000; 50: 27-46.

[9]

Hamley IW. Self-assembly of amphiphilic peptides. Soft Matter. 2011; 7: 4122-38.

[10]

Matson JB, Stupp SI. Self-assembling peptide scaffolds for regenerative medicine. Chem Commun (Camb). 2012; 48: 26-33.

[11]

Ali F, Khan I, Chen J, Akhtar K, Bakhsh EM, Khan SB. Emerging Fabrication Strategies of Hydrogels and Its Applications. Gels. 2022; 8: 205.

[12]

Guan T, Li J, Chen C, Liu Y. Self-Assembling Peptide-Based Hydrogels for Wound Tissue Repair. Adv Sci (Weinh). 2022; 9: e2104165.

[13]

Pogostin BH, Wu SX, Swierczynski MJ, Pennington C, Li S, Vohidova D, et al. Nanofibrous supramolecular peptide hydrogels for controlled release of small-molecule drugs and biologics. Nat Nanotechnol. 2025; 20: 1502-13.

[14]

Appel EA, del Barrio J, Loh XJ, Scherman OA. Supramolecular polymeric hydrogels. Chem Soc Rev. 2012; 41: 6195-214.

[15]

Hubbell JA, Chilkoti A. Nanomaterials for drug delivery. Science. 2012; 337: 303-5.

[16]

Wylie RG, Ahsan S, Aizawa Y, Maxwell KL, Morshead CM, Shoichet MS. Spatially controlled simultaneous patterning of multiple growth factors in three-dimensional hydrogels. Nat Mater. 2011; 10: 799-806.

[17]

Caló E, Khutoryanskiy VV. Biomedical applications of hydrogels: A review of patents and commercial products. Eur Polym J. 2015; 65: 252-67.

[18]

Buwalda SJ, Vermonden T, Hennink WE. Hydrogels for Therapeutic Delivery: Current Developments and Future Directions. Biomacromolecules. 2017; 18: 316-30.

[19]

de Ávila BE, Angsantikul P, Li J, Angel Lopez-Ramirez M, Ramírez-Herrera DE, Thamphiwatana S, et al. Micromotor-enabled active drug delivery for in vivo treatment of stomach infection. Nat Commun. 2017; 8: 272.

[20]

Veiseh O, Doloff JC, Ma M, Vegas AJ, Tam HH, Bader AR, et al. Size- and shape-dependent foreign body immune response to materials implanted in rodents and non-human primates. Nat Mater. 2015; 14: 643-51.

[21]

Wang Y, Meng H, Li Z. Near-infrared inorganic nanomaterial-based nanosystems for photothermal therapy. Nanoscale. 2021; 13: 8751-72.

[22]

Webber MJ, Langer R. Drug delivery by supramolecular design. Chem Soc Rev. 2017; 46: 6600-20.

[23]

Karoyo AH, Wilson LD. A Review on the Design and Hydration Properties of Natural Polymer-Based Hydrogels. Materials (Basel). 2021; 14: 1095.

[24]

Leader B, Baca QJ, Golan DE. Protein therapeutics: a summary and pharmacological classification. Nat Rev Drug Discov. 2008; 7: 21-39.

[25]

Postow MA, Callahan MK, Wolchok JD. Immune checkpoint blockade in cancer therapy. J Clin Oncol. 2015; 33: 1974-82.

[26]

Yu H, Gao R, Liu Y, Fu L, Zhou J, Li L. Stimulus-Responsive Hydrogels as Drug Delivery Systems for Inflammation Targeted Therapy. Adv Sci (Weinh). 2024; 11: e2306152.

[27]

Pashuck ET, Stevens MM. Designing regenerative biomaterial therapies for the clinic. Sci Transl Med. 2012; 4: 160sr4.

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