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Bastiaannet, R.

Publications and source records attributed to Bastiaannet, R..

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Guiding treatment response by spatiotemporal control of α-particle deposition in solid tumors: the case for 'affinity cocktails' of antibody-radioconjugates

Antibody-radioconjugates are leading the investigational targeted alpha-particle (-particle) therapies for the treatment of solid tumors that do not respond to approved therapies. Yet, there is still treatment failure in the clinic largely attributed to the heterogenous patterns of tumor irradiation by -particles. Although -particles are essentially impervious to resistance, attributed to the complex double-strand DNA breaks they cause while traversing cells, cells not being directly hit by -particles will likely not be killed. The diffusion-limited poor tumor penetration of high-affinity (strongly-binding) antibody-radioconjugates combined with -particles short-range in tissue (only 40-80m), let tumor regions far from vasculature inadequately irradiated, therefore, possibly escaping treatment. METHODSTo improve penetration of delivered activity within tumors, we engineered separate actinium-225 antibody-radioconjugates of variable affinities ( affinity cocktails) targeting the same marker on cancer cells, that were chosen based on their preferential irradiation of complementary regions of the same tumors. The cocktails comprise: (a) high-affinity antibody-radioconjugates (as the ones on clinical trials), which mostly deliver their cargo in tumor cells close to the vasculature, where the low(er)-affinity antibody-radioconjugates fail to deliver effective doses, due to their fast clearance; and (b) low(er)-affinity antibody-radioconjugates, that penetrate the deeper parts of tumors farther from the vasculature, where the high-affinity antibodies fail to reach. The efficacy of affinity cocktails was assessed in spheroids, that were employed as surrogates of tumor avascular regions, and on mice with subcutaneous xenografts of different cancer origin, expression levels and/or type of the targeted receptor: HER2 highly-expressing BT-474 breast cancer cells, HER2 moderately-expressing HEPG2 hepatoma cells, and/or HER1 low-expressing BxPC-3 pancreatic cancer cells. RESULTSAlthough the high-affinity antibody-radioconjugates were most lethal against cancer cells in monolayers, affinity cocktails were most effective in inhibiting spheroid growth, due to better collective spreading of the antibody-conjugates within the spheroids volume. On all mouse models, and for the same total injected activity, affinity cocktails resulted in the best tumor growth inhibition, even at lower tumor absorbed doses, compared to the high-affinity antibody-radioconjugates alone. CONCLUSIONSThis proof-of-concept study in -particle antibody-delivery to solid tumors demonstrates that separating the two key processes of diffusion and reaction/binding improves treatment efficacy. This generalizable approach may augment antibody-radioconjugates already in clinical trials.

bioengineering↗

Transport Cocktails for Cancer Therapeutics

Beyond biological cell heterogeneity, evidenced by different resistances to therapeutics, "delivery heterogeneity" crucially limits treatment efficacy for advanced solid tumors: variations in therapeutic drug delivery to different tumor areas (perivascular, perinecrotic) leading to nonuniform drug concentrations/doses and to unsuccessful treatment (cancer cell kill). Short-range (40-80 {micro}m), high energy (1-5 MeV) alpha-particles successfully address the biological heterogeneity: the double-strand DNA breaks they cause make them impervious to cell resistance mechanisms. Multiresponsive nanocarriers and/or engineered antibody-drug-conjugates are elegant approaches to delivering such alpha-particle emitters. Delivery heterogeneity, however, remains a challenge in established (i.e. large, vascularized) tumors. Remarkably, delivery properties enabling efficacy at the cell scale (targeting selectivity, affinity, cell drug uptake) may act against spatial delivery uniformity at the tumor scale (binding-site barrier effect1). We have previously demonstrated, in different mouse models, that spatial delivery uniformity, key to the effective killing of solid tumors, can be achieved utilizing combinations of different, distinct delivery carriers of the same emitter, but with different, complementary delivery properties, "leaving no cancer cell behind". We build first principles reaction-transport models (quantitatively informed by experiments) that explain the "geographically complementary" behaviors of such carrier cocktails, and help optimally design these cocktails and their delivery protocols.

cancer biology↗