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Carrascal-Minino, A.

Publications and source records attributed to Carrascal-Minino, A..

3 recordsLinked to original sources

A translatable evaluation tool to study the biodistribution of clinically-available doxorubicin liposomes: PET imaging of Zr-Talidox

INTRODUCTIONDoxil/Caelyx is a PEGylated liposomal formulation of the chemotherapeutic doxorubicin used in the clinic for Kaposis sarcoma, advanced ovarian cancer, progressive multiple myeloma and metastatic breast cancer. Talidox(R), a smaller doxorubicin PEGylated liposome is undergoing clinical trials and has been proposed as an improvement on previous liposomal formulations for the treatment of advanced solid tumors. We aimed to validate an easily translatable radiolabeling method using zirconium-89 (89Zr) that enables quantitative whole-body PET imaging of these formulations to study their biodistribution and pharmacokinetics. METHODS[89Zr][Zr(oxinate)4] was produced using a kit-based approach followed by use as a direct radiolabeling agent of the liposomal formulations. DFT studies were performed to elucidate the mechanism behind the radiolabeling stability observed within the liposomes. Purified 89Zr-labelled Doxil/Talidox(R) liposomes (5 mg/kg doxorubicin dose) were administered in female BALB/c mice bearing 4T1 tumors. PET/CT imaging was acquired at 20 min, 24 h, 48 h, and 72 h, followed by post-mortem biodistribution at 72 h. RESULTS and DISCUSSIONBoth formulations were radiolabeled efficiently with high stability in serum in vitro for 72 h. In vivo, both formulations showed high tumor uptake at 72 h (18.5 {+/-} 2.4 % IA/g for Doxil and 20.2 {+/-} 2.3 % IA/g for Talidox). In general, ex vivo biodistribution showed similar uptake values for both formulations with high spleen/liver uptake and low bone uptake, confirming stability. Talidox(R) showed significantly lower spleen uptake and higher uptake in bone than Doxil. DFT studies confirmed that doxorubicin can form complexes with 89Zr that are more stable than [89Zr][Zr(oxinate)4], explaining the radiolabeling mechanism and stability results in vitro and in vivo. CONCLUSIONSClinically available PEGylated liposomes containing doxorubicin can be efficiently radiolabelled with 89Zr for PET imaging studies, using a clinically translatable radiolabelling method. HighlightsO_LIDoxorubicin-containing liposomes can be labeled with the positron-emitting radionuclide 89Zr with no impact on their original physicochemical properties. C_LIO_LIRadiolabeling is stable in vivo and enables imaging and biodistribution studies of the liposomes using positron emission tomography (PET). C_LIO_LIThe radiolabeling method is clinically translatable and would allow early assessment of existing and novel doxorubicin liposome biodistribution in humans or personalized medicine (nanotheranostic) approaches. C_LI

bioengineering↗

Characterisation of the dual roles of senescent-like T cells that arise during healthy and unhealthy ageing

Ageing is accompanied by progressive remodelling of the immune system, but chronic metabolic disease may accelerate this process and drive qualitatively distinct forms of immune dysfunction. Here, we used type 2 diabetes (T2D) as a model of unhealthy immune ageing to identify a distinct population of CD8 TEMRA cells that accumulates in older individuals with T2D. These cells were highly differentiated, oligoclonally expanded and had shorter telomeres, consistent with an increased replicative history and premature senescence-like state. Unlike conventional TEMRA cells, which can preserve cytotoxic function through acquisition of NK-cell receptors, T2D-associated TEMRA cells showed reduced surface expression of KLRG1, NKG2D and NKG2A together with defective receptor recycling. TGF{beta}1 was elevated in T2D and reproduced several features of this phenotype in vitro, including increased TEMRA differentiation, reduced NK-receptor expression, altered receptor trafficking and induction of p21. Functionally, these cells displayed reduced TCR-triggered degranulation, correlating with impaired cytotoxicity and altered tissue distribution in individuals with T2D. Rather than providing effective immune surveillance, the accumulation of these highly differentiated TEMRA cells with diminished effector capacity may compromise immune function. Together, these findings identify a distinct senescent-like CD8 TEMRA state linking metabolic inflammation to dysregulated T cell differentiation.

immunology↗

PET imaging for non-invasive monitoring of 89Zr-Talidox delivery to the brain following focused ultrasound-mediated blood-brain barrier opening

The blood-brain barrier (BBB) significantly hinders the treatment of central nervous system (CNS) disorders and brain tumors with intact BBB by restricting the entry of most therapeutic agents, including small-molecule drugs and particularly larger macromolecules. Liposomal formulations, such as PEGylated liposomes with long blood half-lives, high drug-carrying capacity, and reduced off-site toxicity, can be useful for brain drug delivery, but their large size often limits BBB penetration. A novel liposomal doxorubicin formulation, Talidox(R), with a smaller size ([~]36 nm), increased blood circulation half-life, and better stability than previous clinical formulations, can be a suitable choice for brain delivery. This study investigated Talidox(R) delivery to the brain through focused ultrasound (FUS)-mediated BBB transient opening. Radiolabelling of Talidox(R) via intraliposomal 89Zr enabled Positron Emission Tomography (PET) imaging for whole-body non-invasive, real-time monitoring of biodistribution and pharmacokinetics. Following FUS-mediated BBB opening in mice, PET imaging revealed a significant increase in brain uptake compared to non-FUS controls, achieving a 14-fold higher accumulation. Additional validation using passive acoustic detection, microscopy, autoradiography, and cryo-fluorescence tomography demonstrated successful brain distribution that correlated with PET imaging results. These findings underscore the potential of combining Talidox(R) with FUS for effective, non-invasive drug delivery to the brain and highlight the advantages of PET imaging as a modality for non-invasive, longitudinal quantification of drug delivery to the brain.

bioengineering↗