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Blumenfeld, M.

Publications and source records attributed to Blumenfeld, M..

2 recordsLinked to original sources

Patient-derived xenograft studies of fumarate hydratase (FH) -deficient uterine leiomyoma subtype.

Uterine leiomyoma (LM) is the most common benign gynecological tumor in premenopausal women. Our previous patient-derived xenograft (PDX) studies established that 17{beta}-estradiol (E2) and progesterone (P4) stimulate the growth of the two most prevalent subtypes, MED12 mutant (MED12-LM) and HMGA2 overexpressing LMs (HMGA2-LM), via proliferation and hypertrophy of smooth muscle tumor cells (SMTCs). In addition, tumor-associated fibroblasts (TAFs) that do not carry MED12 mutations also contribute to the growth of MED12-LM by secreting extracellular matrix (ECM) proteins. In this study, we investigated the growth control of the fumarate hydratase (FH) deficient LM (FH-LM) subtype, utilizing the PDX model. We identified an FH-negative case with conventional leiomyoma histology. The overexpression of aldo-keto reductase family 1 member B10 (AKR1B10) confirmed the FH deficiency. Like MED12-LM, FH-LM comprised two major cell types: 54.4% SMTCs and 43.3% TAFs. Furthermore, the TAFs expressed FH. The FH-LM PDXs grew in response to E2 and P4 via proliferation and hypertrophy of SMTCs, similar to MED12-LM and HMGA2-LM. While E2 alone did not stimulate growth, E2 was essential for sensitizing FH-deficient SMTCs to P4 by upregulating progesterone receptor (PGR). Our current study established that the growth of the three most prevalent LM subtypes, MED12-LM, HMGA2-LM, and FH-LM, depends on E2 and P4. Thus, selective progesterone receptor modulators (SPRMs) should be an effective treatment option for most symptomatic LM patients.

genetics↗

Classification of electrically-evoked compound action potentials in the parkinsonian subthalamic nucleus of non-human primates

Electrically evoked compound action potentials (ECAPs) generated in the subthalamic nucleus (STN) contain features that may be useful for titrating deep brain stimulation (DBS) therapy for Parkinsons disease. Delivering a strong therapeutic effect with DBS therapies, however, relies on selectively targeting neural pathways to avoid inducing side effects. In this study, we investigated the spatiotemporal features of ECAPs in and around the STN across parameter sweeps of stimulation current amplitude, pulse width, and electrode configuration, and used a linear classifier of ECAP responses to predict electrode location. Four non-human primates were implanted unilaterally with either a directional (n=3) or non-directional (n=1) DBS lead targeting the sensorimotor STN. ECAP responses were characterized by primary features (within 1.6 ms after a stimulus pulse) and secondary features (between 1.6-7.4 ms after a stimulus pulse). Using these ECAP features, a linear classifier was able to accurately differentiate electrodes within the STN versus dorsal to the STN in all four subjects. ECAP responses varied systematically with recording and stimulating electrode locations, which provides a subject-specific neuroanatomical basis for selecting electrode configurations in the treatment of Parkinsons disease with DBS therapy.

neuroscience↗