Pancreatic tumor microenvironmental acidosis and hypoxia transform gold nanorods into cell-penetrant particles for potent radiosensitization

Author:

Rauta Pradipta Ranjan1ORCID,Mackeyev Yuri2ORCID,Sanders Keith1ORCID,Kim Joseph B.K.1,Gonzalez Valeria V.2ORCID,Zahra Yasmin2ORCID,Shohayeb Muhammad A.2ORCID,Abousaida Belal2ORCID,Vijay Geraldine V.2ORCID,Tezcan Okan2,Derry Paul3,Liopo Anton V.1,Zubarev Eugene R.3,Carter Rickey4ORCID,Singh Pankaj1,Krishnan Sunil2ORCID

Affiliation:

1. Department of Radiation Oncology, MD Anderson Cancer Center, Houston, TX, USA.

2. Vivian L. Smith Department of Neurosurgery, UTHealth, Houston, TX, USA.

3. Department of Chemistry, Rice University, Houston, TX, USA.

4. Department of Quantitative Health Sciences, Mayo Clinic, Jacksonville, FL, USA.

Abstract

Coating nanoparticles with stealth epilayers increases circulation time by evading opsonization, macrophage phagocytosis, and reticuloendothelial sequestration. However, this also reduces internalization by cancer cells upon reaching the tumor. We designed gold nanorods (GNRs) with an epilayer that retains stealth properties in circulation but transforms spontaneously in the acidotic tumor microenvironment to a cell-penetrating particle. We used a customized stoichiometric ratio of l -glutamic acid and l -lysine within an amphiphilic polymer of poly( l -glutamic acid-co- l -lysine), or P(Glu-co-Lys), to effect this transformation in acidotic environments. P(Glu-co-Lys)-GNRs were internalized by cancer cells to facilitate potent in vitro radiosensitization. When administered intravenously in mice, they accumulate in the periphery and core of tumors without any signs of serum biochemical or hematological alterations, normal organ histopathological abnormalities, or overt deterioration in animal health. Furthermore, P(Glu-co-Lys)-GNRs penetrated the tumor microenvironment to accumulate in the hypoxic cores of tumors to potently radiosensitize heterotopic and orthotopic pancreatic cancers in vivo.

Publisher

American Association for the Advancement of Science (AAAS)

Subject

Multidisciplinary

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