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DeWitt, M. R.

Publications and source records attributed to DeWitt, M. R..

4 recordsLinked to original sources

Multimodal PET Defines a Goldilocks Thermal Window for Focused Ultrasound Ablation and Immunotherapy Combinations

BackgroundThermally ablative focused ultrasound (T-FUS) offers a noninvasive, spatially precise strategy for local tumor destruction, with the added potential to remodel tumor architecture and immune dynamics in ways that influence downstream therapeutic delivery and efficacy. Despite promising preclinical and clinical findings, the T-FUS parameters that best balance tumor debulking with preservation of local biologic, e.g. immunotherapy, penetrance remain unclear. Thermal dose, defined by the relationship between tissue heating, exposure duration, and biological effect, is likely a critical determinant of this balance. Excessive thermal dose may eliminate the vascular and stromal features needed to support immunotherapy access, whereas insufficient thermal dose may fail to achieve meaningful cytoreduction. Here, we deploy multimodal PET, contrast-enhanced ultrasound, and tissue profiling to define a "Goldilocks Zone" for T-FUS that balances bulk tumor destruction with immunotherapy delivery. MethodSubtotal T-FUS was applied to 4T1 tumors using three thermal dose regimens resolved by in silico modeling. Ablation was quantified by H&E and TTC staining. Post-ablative perfusion and microvascular coverage were assessed by contrast-enhanced ultrasound and immunofluorescence, respectively. Tumor oxygenation was measured by intravenous hypoxyprobe labeling. After T-FUS, mice underwent dynamic [18F]-FDG PET and immunoPET with a model tumor-targeted antibody, [89Zr]-CD47, to relate cytoreduction to antibody penetrance. ImmunoPET findings were further evaluated by ex vivo biodistribution analysis. ResultsIn silico modeling established three T-FUS regimens that generated distinct thermal dose profiles and were deployed in vivo in a solid breast tumor model. Histopathology, perfusion imaging, and hypoxia analysis revealed dose-dependent and dose-divergent biological effects that informed a candidate Goldilocks thermal window. Low thermal dose produced measurable but limited tumor debulking, whereas high thermal dose caused disproportionate functional perfusion collapse. An intermediate thermal dose achieved robust partial ablation, broad hypoxia relief, and preservation of residual tumor physiology sufficient to support antibody access. Dynamic [18F]-FDG PET confirmed a marked reduction in metabolically active tumor burden after Goldilocks T-FUS. Serial [89Zr]-CD47 immunoPET showed that bulk antibody signal was maintained after ablation, and integration of immunoPET with matched [18F]-FDG PET revealed approximately 3-fold enrichment of antibody exposure within the residual viable tumor compartment of ablated tumors. These findings demonstrate that appropriately tuned thermal ablation can debulk tumor while preserving, and potentially concentrating, immunotherapy access within the remaining targetable tumor niche. ConclusionThis study identifies thermal dose as a critical consideration for T-FUS immunotherapy combinations and establishes a PET-informed framework for balancing cytoreduction with therapeutic delivery. Rather than functioning solely as a local debulking modality, we demonstrate that T-FUS can be tuned to yield a post-ablation tumor state that remains accessible to large biologics. These findings provide timely, translationally relevant guidance for tailoring T-FUS regimens to achieve local tumor destruction while preserving an immunotherapy-permissive niche for combination treatment.

bioengineering↗

Focused Ultrasound Thermal Ablation and CD40 Agonism Reprograms Breast Tumor Immunity to Drive Regression and Memory

Focused ultrasound thermal ablation (T-FUS) is a clinically accessible, non-invasive modality capable of inducing rapid tumor cytoreduction while mobilizing early immunologic danger signals. However, its capacity to synergize with potent co-stimulatory immunotherapies in breast cancer (BC) remains undefined. Here, we demonstrate that subtotal T-FUS cooperates with CD40 agonism to elicit durable, T cell-dependent tumor control across four immunologically and hormonally distinct murine BC models. Partial thermal ablation triggered canonical immunogenic cell-death signatures and acute remodeling of intratumoral myeloid populations, while expanding circulating CD4+ and CD8+ T cells. When layered onto this immunogenic milieu, CD40 markedly constrained tumor outgrowth, yielding significant reductions in tumor burden across all models and complete tumor eradication in 33% of E0771 tumors, with additional complete responses in BRPKP110 and EMT6. Efficacy required both CD4+ and CD8+ T cells, and complete responders mounted robust systemic immunity, rejecting contralateral tumor rechallenge with 100% protection and displaying persistent effector-memory T cell activation. Together, these findings establish T-FUS as an immune-potentiating partner for CD40 agonism, capable of driving durable, robust BC regression and immunological memory. This work positions T-FUS+CD40 agonism as a clinically scalable, in situ vaccination-like strategy with potential to benefit breast cancers, including luminal subtypes, that remain largely refractory to immune checkpoint blockade.

cancer biology↗

VEGFR2 blockade converts thermally ablative focused ultrasound into a potent driver of T cell-dependent anti-tumor immunity

Thermally ablative focused ultrasound (TFUS) can induce favorable immune signatures in solid tumors but rarely generates durable systemic immunity or enhances checkpoint inhibition. We tested whether combining TFUS with aVEGFR2, which normalizes tumor vasculature and remodels immune cell composition, triggers T cell-dependent immunity and synergizes with checkpoint inhibition. Subtotal TFUS ([~]40% volumetric ablation fraction, matching clinical trial results) was applied to EMT6 tumors in aVEGFR2-treated BALB/c mice. In EMT6 tumors, TFUS or aVEGFR2 alone had no effect on tumor growth, but their combination eradicated 50% of tumors and drove 83% rechallenge rejection, with CD4/CD8 depletion confirming that tumor eradication and rechallenge rejection were T cell-dependent. TFUS + aPD1 yielded modest benefit, whereas triple therapy (TFUS + aVEGFR2 + aPD1) cured 81% of mice and induced durable, T cell-mediated immunity. Thus, VEGFR2 blockade converts clinically relevant TFUS into a potent systemic immunotherapy and, with the addition of checkpoint inhibition, offers a rational approach to combining already-approved therapies for the treatment of solid tumors.

cancer biology↗

Focused Ultrasound Crosslinkable Granular Hydrogels

Minimally invasive delivery of biomaterials for tissue regeneration can be achieved using biomaterials delivered by injection that rapidly stabilize at the delivery site. Tissue regeneration has been shown to be dependent on material properties, with porosity strongly supporting revascularization and tissue regrowth. Here, a highly porous granular hydrogel system was designed that is compatible with the unique strengths of highly penetrating, minimal invasive focused ultrasound (FUS), to address this challenge. FUS offers well-defined spatial and temporal control over hydrogel crosslinking. We developed a composite granular hydrogel scaffold composed of two polyethylene glycol (PEG)-based components, microgels and fibers with FUS-responsive chemistry, and a pore-defining gelatin microgel component. Upon applying FUS, the bulk granular hydrogel stabilized through the formation of crosslinks between PEG components, with porosity designed by gelatin microgel melting. FUS-crosslinking parameters were determined that resulted in crosslinking both in vitro and a mouse cadaver model of minimally invasive delivery. The resulting granular hydrogels stability depended on the presence of fibers and exhibited viscoelastic properties comparable to granular hydrogels that were photocrosslinked. Hydrogels were highly porous and cytocompatible. This work defines a FUS-responsive granular system and extends the potential of FUS as a novel, noninvasive method for crosslinking regenerative hydrogel systems.

bioengineering↗