Convection-enhanced delivery of topotecan into diffuse intrinsic brainstem tumors in children

Report of 2 cases

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  • 1 Departments of Neurosurgery,
  • | 2 Oncology, and
  • | 3 Pathology and Cell Biology, Columbia University, College of Physicians and Surgeons, New York, New York
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Convection-enhanced delivery (CED) for the treatment of malignant gliomas is a technique that can deliver chemotherapeutic agents directly into the tumor and the surrounding interstitium through sustained, low-grade positive-pressure infusion. This allows for high local concentrations of drug within the tumor while minimizing systemic levels that often lead to dose-limiting toxicity. Diffuse intrinsic pontine gliomas (DIPGs) are universally fatal childhood tumors for which there is currently no effective treatment. In this report the authors describe CED of the topoisomerase inhibitor topotecan for the treatment of DIPG in 2 children.

As part of a pilot feasibility study, the authors treated 2 pediatric patients with DIPG. Stereotactic biopsy with frozen section confirmation of glial tumor was followed by placement of bilateral catheters for CED of topotecan during the same procedure. The first patient underwent CED 210 days after initial diagnosis, after radiation therapy and at the time of tumor recurrence, with a total dose of 0.403 mg in 6.04 ml over 100 hours. Her Karnofsky Performance Status (KPS) score was 60 before CED and 50 posttreatment. Serial MRI initially demonstrated a modest reduction in tumor size and edema, but the tumor progressed and the patient died 49 days after treatment. The second patient was treated 24 days after the initial diagnosis prior to radiation with a total dose of 0.284 mg in 5.30 ml over 100 hours. Her KPS score was 70 before CED and 50 posttreatment. Serial MRI similarly demonstrated an initial modest reduction in tumor size. The patient subsequently underwent fractionated radiation therapy, but the tumor progressed and she died 120 days after treatment.

Topotecan delivered by prolonged CED into the brainstem in children with DIPG is technically feasible. In both patients, high infusion rates (> 0.12 ml/hr) and high infusion volumes (> 2.8 ml) resulted in new neurological deficits and reduction in the KPS score, but lower infusion rates (< 0.04 ml/hr) were well tolerated. While serial MRI showed moderate treatment effect, CED did not prolong survival in these 2 patients. More studies are needed to improve patient selection and determine the optimal flow rates for CED of chemotherapeutic agents into DIPG to maximize safety and efficacy. Clinical trial registration no.: NCT00324844.

Abbreviations used in this paper:

CED = convection-enhanced delivery; CN = cranial nerve; DIPG = diffuse intrinsic pontine glioma; KPS = Karnofsky Performance Status.

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  • 1

    Albright AL, , Price RA, & Guthkelch AN: Brain stem gliomas of children. A clinicopathological study. Cancer 52:23132319, 1983

  • 2

    Allen JC, & Siffert J: Contemporary chemotherapy issues for children with brainstem gliomas. Pediatr Neurosurg 24:98102, 1996

  • 3

    Bobo RH, , Laske DW, , Akbasak A, , Morrison PF, , Dedrick RL, & Oldfield EH: Convection-enhanced delivery of macromolecules in the brain. Proc Natl Acad Sci U S A 91:20762080, 1994

    • Search Google Scholar
    • Export Citation
  • 4

    Bruce JN, , Falavigna A, , Johnson JP, , Hall JS, , Birch BD, & Yoon JT, et al.: Intracerebral clysis in a rat glioma model. Neurosurgery 46:683691, 2000

    • Search Google Scholar
    • Export Citation
  • 5

    Bruce JN, , Fine RL, , Canoll P, , Yun J, , Kennedy BC, & Rosenfeld SS, et al.: Regression of recurrent malignant gliomas with convection-enhanced delivery of topotecan. Neurosurgery 69:12721280, 2011

    • Search Google Scholar
    • Export Citation
  • 6

    Frazier JL, , Lee J, , Thomale UW, , Noggle JC, , Cohen KJ, & Jallo GI: Treatment of diffuse intrinsic brainstem gliomas: failed approaches and future strategies. A review. J Neurosurg Pediatr 3:259269, 2009

    • Search Google Scholar
    • Export Citation
  • 7

    Friedman HS, , Kerby T, , Fields S, , Zilisch JE, , Graden D, & McLendon RE, et al.: Topotecan treatment of adults with primary malignant glioma. Cancer 85:11601165, 1999

    • Search Google Scholar
    • Export Citation
  • 8

    Gerstner ER, & Fine RL: Increased permeability of the blood-brain barrier to chemotherapy in metastatic brain tumors: establishing a treatment paradigm. J Clin Oncol 25:23062312, 2007

    • Search Google Scholar
    • Export Citation
  • 9

    Groothuis DR, , Benalcazar H, , Allen CV, , Wise RM, , Dills C, & Dobrescu C, et al.: Comparison of cytosine arabinoside delivery to rat brain by intravenous, intrathecal, intraventricular and intraparenchymal routes of administration. Brain Res 856:281290, 2000

    • Search Google Scholar
    • Export Citation
  • 10

    Hargrave D, , Bartels U, & Bouffet E: Diffuse brainstem glioma in children: critical review of clinical trials. Lancet Oncol 7:241248, 2006

    • Search Google Scholar
    • Export Citation
  • 11

    Iyer RR, , Butman JA, , Walbridge S, , Gai ND, , Heiss JD, & Lonser RR: Tracking accuracy of T2- and diffusion-weighted magnetic resonance imaging for infusate distribution by convection-enhanced delivery. Laboratory investigation. J Neurosurg 115:474480, 2011

    • Search Google Scholar
    • Export Citation
  • 12

    Kaiser MG, , Parsa AT, , Fine RL, , Hall JS, , Chakrabarti I, & Bruce JN: Tissue distribution and antitumor activity of topotecan delivered by intracerebral clysis in a rat glioma model. Neurosurgery 47:13911399, 2000

    • Search Google Scholar
    • Export Citation
  • 13

    Khatua S, , Moore KR, , Vats TS, & Kestle JR: Diffuse intrinsic pontine glioma-current status and future strategies. Childs Nerv Syst 27:13911397, 2011

    • Search Google Scholar
    • Export Citation
  • 14

    Kunwar S: Convection enhanced delivery of IL13-PE38QQR for treatment of recurrent malignant glioma: presentation of interim findings from ongoing phase 1 studies. Acta Neurochir Suppl 88:105111, 2003

    • Search Google Scholar
    • Export Citation
  • 15

    Langer R: New methods of drug delivery. Science 249:15271533, 1990

  • 16

    Laske DW, , Youle RJ, & Oldfield EH: Tumor regression with regional distribution of the targeted toxin TF-CRM107 in patients with malignant brain tumors. Nat Med 3:13621368, 1997

    • Search Google Scholar
    • Export Citation
  • 17

    Lonser RR, , Warren KE, , Butman JA, , Quezado Z, , Robison RA, & Walbridge S, et al.: Real-time image-guided direct convective perfusion of intrinsic brainstem lesions. Technical note. J Neurosurg 107:190197, 2007

    • Search Google Scholar
    • Export Citation
  • 18

    Morrison PF, , Chen MY, , Chadwick RS, , Lonser RR, & Oldfield EH: Focal delivery during direct infusion to brain: role of flow rate, catheter diameter, and tissue mechanics. Am J Physiol 277:R1218R1229, 1999

    • Search Google Scholar
    • Export Citation
  • 19

    Murad GJ, , Walbridge S, , Morrison PF, , Garmestani K, , Degen JW, & Brechbiel MW, et al.: Real-time, image-guided, convection-enhanced delivery of interleukin 13 bound to pseudomonas exotoxin. Clin Cancer Res 12:31453151, 2006

    • Search Google Scholar
    • Export Citation
  • 20

    Murad GJ, , Walbridge S, , Morrison PF, , Szerlip N, , Butman JA, & Oldfield EH, et al.: Image-guided convection-enhanced delivery of gemcitabine to the brainstem. J Neurosurg 106:351356, 2007

    • Search Google Scholar
    • Export Citation
  • 21

    Occhiogrosso G, , Edgar MA, , Sandberg DI, & Souweidane MM: Prolonged convection-enhanced delivery into the rat brainstem. Neurosurgery 52:388394, 2003

    • Search Google Scholar
    • Export Citation
  • 22

    Pardridge WM: Drug delivery to the brain. J Cereb Blood Flow Metab 17:713731, 1997

  • 23

    Patel SJ, , Shapiro WR, , Laske DW, , Jensen RL, , Asher AL, & Wessels BW, et al.: Safety and feasibility of convection-enhanced delivery of Cotara for the treatment of malignant glioma: initial experience in 51 patients. Neurosurgery 56:12431253, 2005

    • Search Google Scholar
    • Export Citation
  • 24

    Pierre-Kahn A, , Hirsch JF, , Vinchon M, , Payan C, , Sainte-Rose C, & Renier D, et al.: Surgical management of brain-stem tumors in children: results and statistical analysis of 75 cases. J Neurosurg 79:845852, 1993

    • Search Google Scholar
    • Export Citation
  • 25

    Pöpperl G, , Goldbrunner R, , Gildehaus FJ, , Kreth FW, , Tanner P, & Holtmannspötter M, et al.: O-(2-[18F]fluoroethyl)-L-tyrosine PET for monitoring the effects of convection-enhanced delivery of paclitaxel in patients with recurrent glioblastoma. Eur J Nucl Med Mol Imaging 32:10181025, 2005

    • Search Google Scholar
    • Export Citation
  • 26

    Rand RW, , Kreitman RJ, , Patronas N, , Varricchio F, , Pastan I, & Puri RK: Intratumoral administration of recombinant circularly permuted interleukin-4-Pseudomonas exotoxin in patients with high-grade glioma. Clin Cancer Res 6:21572165, 2000

    • Search Google Scholar
    • Export Citation
  • 27

    Saito R, , Sonoda Y, , Kumabe T, , Nagamatsu K, , Watanabe M, & Tominaga T: Regression of recurrent glioblastoma infiltrating the brainstem after convection-enhanced delivery of nimustine hydrochloride. Case report. J Neurosurg Pediatr 7:522526, 2011

    • Search Google Scholar
    • Export Citation
  • 28

    Sampson JH, , Akabani G, , Archer GE, , Bigner DD, , Berger MS, & Friedman AH, et al.: Progress report of a Phase I study of the intracerebral microinfusion of a recombinant chimeric protein composed of transforming growth factor (TGF)-alpha and a mutated form of the Pseudomonas exotoxin termed PE-38 (TP-38) for the treatment of malignant brain tumors. J Neurooncol 65:2735, 2003

    • Search Google Scholar
    • Export Citation
  • 29

    Sandberg DI, , Edgar MA, & Souweidane MM: Convection-enhanced delivery into the rat brainstem. J Neurosurg 96:885891, 2002

  • 30

    Thomale UW, , Tyler B, , Renard V, , Dorfman B, , Chacko VP, & Carson BS, et al.: Neurological grading, survival, MR imaging, and histological evaluation in the rat brainstem glioma model. Childs Nerv Syst 25:433441, 2009

    • Search Google Scholar
    • Export Citation
  • 31

    Thomale UW, , Tyler B, , Renard VM, , Dorfman B, , Guarnieri M, & Haberl HE, et al.: Local chemotherapy in the rat brainstem with multiple catheters: a feasibility study. Childs Nerv Syst 25:2128, 2009

    • Search Google Scholar
    • Export Citation
  • 32

    Voges J, , Reszka R, , Gossmann A, , Dittmar C, , Richter R, & Garlip G, et al.: Imaging-guided convection-enhanced delivery and gene therapy of glioblastoma. Ann Neurol 54:479487, 2003

    • Search Google Scholar
    • Export Citation
  • 33

    Walker DA, , Punt JA, & Sokal M: Clinical management of brain stem glioma. Arch Dis Child 80:558564, 1999

  • 34

    Weber FW, , Floeth F, , Asher A, , Bucholz R, , Berger M, & Prados M, et al.: Local convection enhanced delivery of IL4-Pseudomonas exotoxin (NBI-3001) for treatment of patients with recurrent malignant glioma. Acta Neurochir Suppl 88:93103, 2003

    • Search Google Scholar
    • Export Citation
  • 35

    Yang W, , Barth RF, , Wu G, , Bandyopadhyaya AK, , Thirumamagal BT, & Tjarks W, et al.: Boronated epidermal growth factor as a delivery agent for neutron capture therapy of EGF receptor positive gliomas. Appl Radiat Isot 61:981985, 2004

    • Search Google Scholar
    • Export Citation
  • 36

    Yin D, , Richardson RM, , Fiandaca MS, , Bringas J, , Forsayeth J, & Berger MS, et al.: Cannula placement for effective convection-enhanced delivery in the nonhuman primate thalamus and brainstem: implications for clinical delivery of therapeutics. Laboratory investigation. J Neurosurg 113:240248, 2010

    • Search Google Scholar
    • Export Citation

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