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Sandberg, D. I.

Publications and source records attributed to Sandberg, D. I..

2 recordsLinked to original sources

The ultrastructure of subarachnoid trabeculae in non-human primates varies by tissue region within the central nervous system

The subarachnoid space (SAS) plays an important role in central nervous system (CNS) physiology, housing cerebrospinal fluid (CSF), providing nutrients, clearing waste, and protecting CNS tissues from injury. The SAS also contains an intricate arrangement of collagenous fibers, known as subarachnoid trabeculae, which serve as biomechanical support for the subarachnoid space and modulate the flow of CSF. Despite their myriad of roles in health and disease, the ultrastructure of trabeculae is incompletely described, with a specific gap in understanding how fiber structure varies across different regions of the CNS. In this work, we used optimized fixation techniques and scanning electron microscopy (SEM) imaging to study ultrastructural differences in trabeculae that were obtained from different regions of the nonhuman primate (NHP) brain and spinal cord. Qualitative assessments included evaluation of the relative prevalence of different kinds of fiber networks by region, leading us to a redefinition of terminology for fiber morphology. Quantitative measurements yielded dramatic differences in fiber diameter, density, and network porosity between different regions of the CNS. Broadly, trabeculae supporting cauda equina, cervical spinal cord, and exiting nerve roots were observed to have a very high density of small diameter fibers, whereas larger fibers and more complex arrangements were observed in other regions of the CNS. These data contribute to a growing field understanding of CNS-region specific differences in tissue ultrastructure.

neuroscience↗

Nanoparticle encapsulation enhances spatial distribution of Panobinostat to treat metastatic medulloblastoma via the intrathecal route

Medulloblastoma (MB) is an aggressive central nervous system (CNS) malignancy that primarily affects children and frequently exhibits metastasis to the leptomeninges of the brain and spinal cord. We developed a {beta}-Cyclodextrin-poly({beta}-Amino Ester) nanoparticle system to deliver the histone deactylase inhibitor (HDACi) Panobinostat to MB by the intrathecal route. Various imaging methods were utilized to study nanoparticle and payload fate following infusion into the cerebrospinal fluid (CSF) of mice via cisterna magna or lumbar access points. Nanoparticles dramatically improved penetration of hydrophobic small molecules into distal regions of the spinal cord. Panobinostat-loaded nanoparticles were effective at treating patient-derived MB, activating pharmacodynamic targets, slowing growth of the primary tumor, decreasing incidence of metastasis at the time of death, and ultimately prolonging survival. These studies provide insight into the mechanisms mediating transport of colloids and therapeutic molecules in the subarachnoid space and highlight new approaches for treating metastatic disease in the CNS.

bioengineering↗