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Buckley, S. T.

Publications and source records attributed to Buckley, S. T..

2 recordsLinked to original sources

Kinetics of Hypoglycemia in Diabetes Patients Informs Development of New Modes of Glucagon Therapy

Insulin therapy revolutionized the care of patients with diabetes starting [~]100 years ago, yet insulin-induced hypoglycemia remains a serious life-threatening complication of insulin therapy. Glucagon is a highly effective treatment; however current dosage forms remain under-utilized due to poor patient compliance. The development of improved and situation-specific glucagon therapies remains challenging due to the poor drug stability and incomplete knowledge of the kinetics of different hypoglycemic events. Thus, we analyzed continuous glucose monitor (CGM) data from 1135 patients with type 1 diabetes (T1D) representing 246.18 patient years. We show that a surprisingly large proportion of hypoglycemic episodes (20-30%) are follow-on events resulting from under-treatment of prior events, and that the average duration of independent hypoglycemic events can last up to 79 to 108 minutes. We further show that the kinetics of hypoglycemic onset and persistence varies significantly by patient history, severity, time of occurrence. Guided by these findings, we recognize the opportunity to develop high-density, readily-soluble, and thermostable (ReST) solid glucagon formulations, and painless application-specific microneedle-patches that are in line with the timing needs of T1D patients who are awake and asleep. Thus, we demonstrate (1) on-demand patches for rapid prevention or treatment of mild hypoglycemia during the day, and (2) enzyme-driven hypoglycemia-responsive patches supporting autonomous glucagon release during the night. We show excellent in vitro glucagon stability, loading, and release kinetics of both systems and demonstrate their ability to treat hypoglycemia in diabetic animals. The engineering of these delivery systems demonstrates the potential of human CGM data and solid glucagon formulations to enable new modes of glucagon therapy, thereby expanding the clinical role of glucagon beyond the emergency setting.

bioengineering↗

Layer-by-Layer Polymeric Films: A Novel Approach to Buccal GLP-1 Delivery

Buccal delivery offers a promising alternative to oral drug administration by enabling direct systemic absorption and avoiding first-pass metabolism. Multilayer polymeric films represent a promising strategy for the sequential delivery of drug and absorption enhancer in the oral cavity. Here, dual- and triple-layer films were fabricated via slot-die coating, incorporating a GLP-1 receptor agonist (GLP-1-RA) and the penetration enhancer sodium glycodeoxycholate (GDC). These were co-loaded in dual-layer films or compartmentalized in triple-layer films. Scanning electron microscopy and optical coherence tomography confirmed well-defined, distinct layers with thicknesses suitable for buccal administration (339 {+/-} 10.24 {micro}m and 487 {+/-} 36.5 {micro}m for dual- and triple-layer films, respectively). Both designs exhibited good mucoadhesion and mucosal compatibility, and preserved the secondary structure of GLP-1-RA. In vitro release studies showed rapid diffusion of GDC and GLP-1-RA from dual-layer films, whereas triple-layer films enabled sustained, sequential release of GDC and GLP-1-RA. Ex vivo porcine buccal mucosa studies showed higher GLP-1-RA and GDC flux from triple-layer films compared to dual-layer films. The films also did not compromise epithelial integrity, in contrast to the direct application of GLP-1-RA and GDC, which caused significant epithelial disruption. These results demonstrate that multilayer film architecture and spatial layering can be harnessed to control release kinetics, maximize peptide penetration, and minimize tissue stress, offering a versatile platform for safe and effective peptide delivery. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=93 SRC="FIGDIR/small/700335v1_ufig1.gif" ALT="Figure 1"> View larger version (25K): org.highwire.dtl.DTLVardef@76858borg.highwire.dtl.DTLVardef@1397e74org.highwire.dtl.DTLVardef@19d1841org.highwire.dtl.DTLVardef@a369c5_HPS_FORMAT_FIGEXP M_FIG C_FIG

bioengineering↗