Study Investigates Effects of Patient Blood Management Program with Masimo SpHb®, Noninvasive, Continuous Hemoglobin Monitoring, on Postoperative Cancer Patients

On November 16, 2020 Masimo (NASDAQ: MASI) reported the findings of a study published in Blood Transfusion in which Dr. Lucia Merolle and colleagues at the Azienda USL-IRCCS of Reggio Emilia, Italy investigated the impact of applying a patient blood management program, including use of noninvasive and continuous hemoglobin monitoring, Masimo SpHb, to the care of postoperative cancer patients (Press release, Masimo Laboratories, NOV 16, 2020, View Source [SID1234571155]).1 The study found that using SpHb as part of a patient blood management program not only increased how often postoperative blood transfusions were appropriate, but decreased the total and mean number of blood units transfused per patient.

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Patient blood management (PBM) is "an evidence-based, multidisciplinary approach aimed at optimizing the care of patients who might need blood transfusions." Recognizing that PBM might have specific benefits for surgical oncology patients, the researchers implemented a two-step PBM program and compared three groups of postoperative adult cancer patients who underwent major surgery between 2014 and 2017. Step 1 PBM included seminars and training designed to teach semi-intensive post-surgical personnel the principles of PBM. Step 2 PBM added the use of SpHb monitored with Masimo Radical-7 Pulse CO-Oximeters with SpHb. Audit 1 reviewed data for 200 patients whose post-surgical care did not incorporate PBM. Audit 2 was of 200 patients whose care incorporated Stage 1 PBM, and Audit 3 was of 200 patients whose care incorporated Stage 2 PBM along with continuous SpHb monitoring.

Using guidelines developed by the Italian Society of Transfusion Medicine and Immunohaematology (SIMTI), the researchers found that transfusion appropriateness rose from 38% in Audit 1 patients, to 75% in Audit 2 patients (Step 1 PBM), to 79% in Audit 3 patients (Step 2 PBM, with SpHb). The total number of red blood cell (RBC) units transfused was similar for Audit 1 and Audit 2 patients (52 and 58 units, respectively), but dropped to 39 units with the addition of SpHb monitoring to PBM (Audit 3). The mean number of RBC units transfused was the same for Audit 1 and Audit 2 patients (1.8 units/patient), but again, with the addition of SpHb monitoring (Audit 3), the mean dropped to 1.3 units/patient.

The researchers concluded, "Our PBM bundle positively impacted RBC transfusion appropriateness in post-surgical cancer patients, both in terms of quality and quantity. A structured PBM program specifically dedicated to surgical oncology should cover the entire perioperative period and might further improve transfusion appropriateness in these patients. The publication of guidelines on the management of anemia in surgical oncology should be a priority."

In other clinical studies, continuous monitoring with SpHb as part of PBM programs has been found to improve outcomes, such as reducing the percentage of patients receiving transfusions,2 reducing the units of red blood cells transfused per patient,3-4 reducing the time to transfusion,5 reducing costs,6 and even reducing mortality 30 and 90 days after surgery by 33% and 29%, respectively.7 With the addition of the Italian study, the evidence of SpHb’s impact on outcomes spans the globe, representing 6 countries on 4 different continents.1-7 Today, SpHb technology supports clinicians in over 75 countries around the world.8

SpHb is not intended to replace laboratory blood testing. Clinical decisions regarding red blood cell transfusions should be based on the clinician’s judgment considering, among other factors, patient condition, continuous SpHb monitoring, and laboratory diagnostic tests using blood samples.

Provectus Biopharmaceuticals Announces Presentation of PV-10® Pancreatic Cancer Data at 2020 Society for Immunotherapy of Cancer (SITC) Annual Meeting

On November 16, 2020 Provectus (OTCQB: PVCT) reported that H. Lee Moffitt Cancer Center (Moffitt) presented non-clinical data from ongoing research on investigational autolytic cancer immunotherapy PV-10, an injectable formulation of Provectus’ proprietary small molecule rose bengal disodium (RBD), as a single-agent and in combination with gemcitabine chemotherapy for the treatment of pancreatic cancer at the Society for Immunotherapy of Cancer (SITC) (Free SITC Whitepaper)’s (SITC) (Free SITC Whitepaper) 35th Anniversary Annual Meeting & Pre-Conference Programs (SITC 2020), held online from November 9-14, 2020 (Press release, Provectus Biopharmaceuticals, NOV 16, 2020, View Source [SID1234571154]).

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RBD selectively accumulates in the lysosomes of cancer cells upon contact, disrupts these lysosomes, and causes the cancer cells to die. Intralesional (IL) (aka intratumoral) administration of PV-10 causes acute destruction of injected tumors, resulting in the release of danger-associated molecular pattern molecules (DAMPs) and tumor antigens. These signaling factors may initiate an immunologic cascade, where the innate immune system response may facilitate systemic anti-tumor immunity by the adaptive immune system. PV-10-mediated DAMP release may activate CD8+ T cells, CD4+ T cells, and NKT cells.

Moffitt’s poster presentation, authored by Innamarato et al. and entitled "Intralesional injection of rose bengal augments the efficacy of gemcitabine chemotherapy against pancreatic tumors," concluded:

PV-10 kills human and murine pancreatic tumor cells in vitro,
The combination therapy of PV-10 and gemcitabine reduces the growth rate of murine Panc02 tumors in vivo,
Immunogenic Panc02OVA tumors are more sensitive in vivo to single-agent PV-10,
The combination therapy reduces the growth of non-injected bystander Panc02OVA tumors in vivo, and
Reduced tumor growth after PV-10 treatment is associated with the release of DAMPs.
PV-10-mediated DAMP-release has been demonstrated in three different cancers, varying from immunologically "cold" to "hot" tumor types:

Pancreatic cancer: Innamarato et al., SITC (Free SITC Whitepaper) 2020 (Moffitt; non-clinical)
Colon cancer: Qin et al., Cell Death and Disease 2017 (University of Illinois at Chicago; non-clinical), and
Melanoma: Liu et al., Oncotarget 2016 (Moffitt; clinical and non-clinical).
Dominic Rodrigues, Vice Chair of the Company’s Board of Directors said, "We are grateful to the leadership and researchers of the Pilon-Thomas Lab at Moffitt Cancer Center for their translational investigation of cancer immunotherapy PV-10 in melanoma, breast cancer, and now pancreatic cancer. The non-clinical results presented at this year’s annual meeting of the Society for Immunotherapy of Cancer (SITC) (Free SITC Whitepaper) demonstrate that intralesional administration of PV-10 can enhance the efficacy of gemcitabine chemotherapy against pancreatic tumors."

Mr. Rodrigues added, "A key aspect of our drug development strategy for intralesional administration of PV-10 in solid tumor cancers is targeting disease indications where there is high unmet need among patients, limited activity from approved therapies, and the opportunity to display the contribution of PV-10’s functional immune response to successful patient treatment outcomes. Pancreatic cancer is a deadly disease for which PV-10 could enhance standard of care chemotherapy."

A copy of the poster presentation is available on Provectus’ website at View Source

About Rose Bengal Disodium

RBD is 4,5,6,7-tetrachloro-2′,4′,5′,7′-tetraiodofluorescein disodium, a halogenated xanthene and Provectus’ proprietary lead molecule. The Company manufactures cGMP RBD using a patented process designed to meet stringent modern global quality requirements for pharmaceuticals and pharmaceutical ingredients.

An IL formulation (i.e., by direct injection) of cGMP RBD drug substance, cGMP PV-10, is being developed as an autolytic immunotherapy drug product for solid tumor cancers. By targeting tumor cell lysosomes, RBD treatment may yield immunogenic cell death in solid tumor cancers that results in tumor-specific reactivity in circulating T cells, including a T cell mediated immune response against treatment refractory and immunologically cold tumors.1,2,3 Adaptive immunity can be enhanced by combining immune checkpoint blockade (CB) with RBD.4 IL PV-10 is undergoing clinical study for relapsed and refractory adult solid tumor cancers, such skin and liver cancers.

IL PV-10 is also undergoing preclinical study for relapsed and refractory pediatric solid tumor cancers, such as neuroblastoma, Ewing sarcoma, rhabdomyosarcoma, and osteosarcoma.5,6

A topical formulation of cGMP RBD drug substance, PH-10, is being developed as a clinical-stage immuno-dermatology drug product for inflammatory dermatoses, such as atopic dermatitis and psoriasis. RBD can modulate multiple interleukin and interferon pathways and key cytokine disease drivers.7

Oral formulations of cGMP RBD are undergoing preclinical study for relapsed and refractory pediatric blood cancers, such as acute lymphocytic leukemia and acute myelomonocytic leukemia.8,9

Oral formulations of cGMP RBD are also undergoing preclinical study as prophylactic and therapeutic treatments for high-risk adult solid tumor cancers, such as head and neck, breast, pancreatic, liver, and colorectal cancers.

Different formulations of cGMP RBD are also undergoing preclinical study as potential treatments for multi-drug resistant (MDR) bacteria, such as Gram-negative bacteria.

Tumor Cell Lysosomes as the Seminal Cancer Drug Target

Lysosomes are the central organelles for intracellular degradation of biological materials, and nearly all types of eukaryotic cells have them. Discovered by Christian de Duve, MD in 1955, lysosomes are linked to several biological processes, including cell death and immune response. In 1959, de Duve described them as ‘suicide bags’ because their rupture causes cell death and tissue autolysis. He was awarded the Nobel Prize in 1974 for discovering and characterizing lysosomes, which are also linked to each of the three primary cell death pathways: apoptosis, autophagy, and necrosis.

Building on the Discovery, Exploration, and Characterization of Lysosomes

Cancer cells, particularly advanced cancer cells, are very dependent on effective lysosomal functioning.10 Cancer progression and metastasis are associated with lysosomal compartment changes11,12, which are closely correlated (among other things) with invasive growth, angiogenesis, and drug resistance13.

RBD selectively accumulates in the lysosomes of cancer cells upon contact, disrupting the lysosomes and causing the cells to die. Provectus1,14, external collaborators5, and other researchers15,16,17 have independently shown that RBD triggers each of the three primary cell death pathways: apoptosis, autophagy, and necrosis.

Cancer Cell Autolytic Death via RBD: RBD-induced autolytic cell death, or death by self-digestion, in Hepa1-6 murine hepatocellular carcinoma (HCC) cells can be viewed in this Provectus video of the process (ethidium homodimer 1 [ED-1] stains DNA, but is excluded from intact nuclei; lysosensor green [LSG] stains intact lysosomes; the video is provided in 30-second frames, with a duration of approximately one hour). Exposure to RBD triggers the disruption of lysosomes, followed by nucleus failure and autolytic cell death. Identical responses have been shown by the Company in HTB-133 human breast carcinoma (which can be viewed in this Provectus video of the process, with a duration of approximately two hours) and H69Ar human multidrug-resistant small cell lung carcinoma. Cancer cell autolytic cell death was reproduced by research collaborators in neuroblastoma cells to show that lysosomes are disrupted upon exposure to RBD.5

Tumor Autolytic Death via RBD: RBD causes acute autolytic destruction of injected tumors (via autolytic cell death), mediating the release of DAMPs and tumor antigens; release of these signaling factors may initiate an immunologic cascade where local response by the innate immune system may facilitate systemic anti-tumor immunity by the adaptive immune system. The DAMP release-mediated adaptive immune response activates lymphocytes, including CD8+ T cells, CD4+ T cells, and NKT cells, based on clinical and preclinical experience in multiple tumor types. Mediated immune signaling pathways may include an effect on STING, which plays an important role in innate immunity.9

Orphan Drug Designations (ODDs)

ODD status has been granted to RBD by the U.S. Food and Drug Administration for metastatic melanoma in 2006, hepatocellular carcinoma in 2011, neuroblastoma in 2018, and ocular melanoma (including uveal melanoma) in 2019.

Intellectual Property (IP)

Provectus’ IP includes a family of US and international (a number of countries in Asia, Europe, and North America) patents that protect the process by which cGMP RBD and related halogenated xanthenes are produced, avoiding the formation of previously unknown impurities that exist in commercial-grade rose bengal in uncontrolled amounts. The requirement to control these impurities is in accordance with International Council on Harmonisation (ICH) guidelines for the manufacturing of an injectable pharmaceutical. US patent numbers are 8,530,675, 9,273,022, and 9,422,260, with expirations ranging from 2030 to 2031.

The Company’s IP also includes a family of US and international (a number of countries in Asia, Europe, and North America) patents that protect the combination of RBD and CB (e.g., anti-CTLA-4, anti-PD-1, and anti-PD-L1 agents) for the treatment of a range of solid tumor cancers. US patent numbers are 9,107,887, 9,808,524, 9,839,688, and 10,471,144, with expirations ranging from 2032 to 2035; US patent application numbers include 20200138942.

About Provectus

Provectus Biopharmaceuticals, Inc. (Provectus or the Company) is a clinical-stage biotechnology company developing immunotherapy medicines for different disease areas based on an entirely- and wholly-owned family of small molecules called halogenated xanthenes. Information about the Company’s clinical trials can be found at the National Institutes of Health (NIH) registry, www.clinicaltrials.gov. For additional information about Provectus, please visit the Company’s website at www.provectusbio.com.

References

1. Wachter et al. Functional Imaging of Photosensitizers using Multiphoton Microscopy. Proceedings of SPIE 4620, 143, 2002.

2. Liu et al. Intralesional rose bengal in melanoma elicits tumor immunity via activation of dendritic cells by the release of high mobility group box 1. Oncotarget 7, 37893, 2016.

3. Qin et al. Colon cancer cell treatment with rose bengal generates a protective immune response via immunogenic cell death. Cell Death and Disease 8, e2584, 2017.

4. Liu et al. T cell mediated immunity after combination therapy with intralesional PV-10 and blockade of the PD-1/PD-L1 pathway in a murine melanoma model. PLoS One 13, e0196033, 2018.

5. Swift et al. Potent in vitro and xenograft antitumor activity of a novel agent, PV-10, against relapsed and refractory neuroblastoma. OncoTargets and Therapy 12, 1293, 2019.

6. Swift et al. In vitro and xenograft anti-tumor activity, target modulation and drug synergy studies of PV-10 against refractory pediatric solid tumors. 2018 ASCO (Free ASCO Whitepaper) Annual Meeting, J Clin Oncol 36, 2018 (suppl; abstr 10557).

7. Krueger et al. Immune Modulation by Topical PH-10 Aqueous Hydrogel (Rose Bengal Disodium) in Psoriasis Lesions. Psoriasis Gene to Clinic, 8th International Congress, Br J Dermatol 177.

8. Swift et al. In Vitro Activity and Target Modulation of PV-10 Against Relapsed and Refractory Pediatric Leukemia. 2018 ASH (Free ASH Whitepaper) Annual Meeting, Blood 132, 2018 (suppl; abstr 5207).

9. Thakur et al. Association of heat shock proteins as chaperone for STING: A potential link in a key immune activation mechanism revealed by the novel anti-cancer agent PV-10. 2020 AACR (Free AACR Whitepaper) VAM II, (abstr 5393).

10. Piao et al. Targeting the lysosome in cancer. Annals of the New York Academy of Sciences. 2016; 1371(1): 45.

11. Nishimura et al. Malignant Transformation Alters Intracellular Trafficking of Lysosomal Cathespin D in Human Breast Epithelial Cells. Pathology Oncology Research. 1998; 4(4): 283.

12. Gocheva et al. Distinct roles for cysteine cathepsin genes in multistage tumorigenesis. Genes & Development. 2006; 20(5): 543.

13. Fehrenbacher et al. Lysosomes as Targets for Cancer Therapy. Cancer Research. 2005; 65 (8): 2993.

14. Wachter et al. Imaging Photosensitizer Distribution and Pharmacology using Multiphoton Microscopy. Proceedings of SPIE 4622, 112, 2002.

15. Koevary. Selective toxicity of rose Bengal to ovarian cancer cells in vitro. International Journal of Physiology, Pathophysiology and Pharmacology 4(2), 99, 2012.

16. Zamani et al. Rose Bengal suppresses gastric cancer cell proliferation via apoptosis and inhibits nitric oxide formation in macrophages. Journal of Immunotoxicology, 11(4), 367, 2014.

17. Luciana et al. Rose Bengal Acetate photodynamic therapy-induced autophagy. Cancer Biology & Therapy, 10:10, 1048, 2010.

Trademarks

PV-10 and PH-10 are registered trademarks of Provectus, Knoxville, Tennessee, U.S.A.

Precigen Announces Dosing of First Patients with UltraCAR-T® Cells Manufactured Using Proprietary UltraPorator™ System in Ongoing PRGN-3005 and PRGN-3006 Phase 1 Clinical Trials

On November 16, 2020 Precigen, Inc. (Nasdaq: PGEN), a biopharmaceutical company specializing in the development of innovative gene and cell therapies to improve the lives of patients, reported clinical implementation of its UltraPorator system, a device exclusive to Precigen for the scale-up of rapid and cost-effective decentralized manufacturing of UltraCAR-T therapies (Press release, Precigen, NOV 16, 2020, View Source [SID1234571153]). Precigen and its clinical partners have now successfully dosed the first patients with UltraCAR-T cells manufactured using the UltraPorator system. The patients were dosed with PRGN-3005 UltraCAR-T cells in the intraperitoneal (IP) arm of the ongoing Phase 1 study for advanced ovarian cancer patients conducted in collaboration with the University of Washington/Fred Hutchinson Cancer Research Center and with PRGN-3006 UltraCAR-T cells in the ongoing Phase 1/1b study for patients with relapsed or refractory acute myeloid leukemia (AML) and higher risk myelodysplastic syndrome (MDS) conducted in collaboration with the Moffitt Cancer Center. UltraCAR-T eliminates ex vivo expansion, which reduces manufacturing time to allow for rapid next day administration of UltraCAR-T cells following non-viral gene transfer.

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"Dosing the first patients with UltraCAR-T cells manufactured using our proprietary UltraPorator system in both of our UltraCAR-T trials represents a major advance in our ability to transform how personalized cancer therapies are manufactured and administered within a medical center’s own labs. This milestone positions UltraPorator as the essential go-to platform for cell therapy manufacturing," said Helen Sabzevari, PhD, President and CEO of Precigen. "Our long-term goal is to streamline the process of oncology drug manufacturing so that healthcare professionals can treat their patients as quickly as possible in a commercially viable and expedient way."

UltraPorator is a high-throughput, semi-closed electroporation system for reprogramming T-cells using Precigen’s next generation Sleeping Beauty non-viral gene transfer technology. UltraPorator reduces manufacturing risk and allows the medical center to generate UltraCAR-T cells within its own facilities. UltraPorator is capable of handling the electroporation of billions of T-cells in minutes, and further streamlines the UltraCAR-T overnight manufacturing process, allowing for rapid manufacturing of UltraCAR-T cells in higher doses and quantities, which is critical as the Company moves to expansion phases for its clinical studies.

"Current methods for non-viral gene transfer require labor intensive, manual handling of samples, which may increase contamination risk, requires multiple batches and involves extensive hours to manufacture a single dose," said Mary L. (Nora) Disis, MD, faculty member at the University of Washington and Fred Hutchinson Cancer Research Center and one of the lead investigators for the PRGN-3005 study. "The UltraPorator system is a critical piece of the puzzle for personalized manufacturing by significantly reducing processing times, further streamlining UltraCAR-T manufacturing and allowing us to deliver personalized treatment to patients faster than ever."

"Time is critical when selecting and administering treatment to relapsed or refractory AML patients," said David A. Sallman, MD, lead investigator for the PRGN-3006 study at the Moffitt Cancer Center. "The ability to conveniently manufacture PRGN-3006 UltraCAR-T cells using the UltraPorator device overnight and administer treatment the next day can be a game-changer for these patients."

Precigen: Advancing Medicine with Precision
Precigen (Nasdaq: PGEN) is a dedicated discovery and clinical stage biopharmaceutical company advancing the next generation of gene and cell therapies using precision technology to target urgent and intractable diseases in our core therapeutic areas of immuno-oncology, autoimmune disorders, and infectious diseases. Our technologies enable us to find innovative solutions for affordable biotherapeutics in a controlled manner. Precigen operates as an innovation engine progressing a preclinical and clinical pipeline of well-differentiated unique therapies toward clinical proof-of-concept and commercialization. For more information about Precigen, visit www.precigen.com or follow us on LinkedIn.

About PRGN-3005 UltraCAR-T
PRGN-3005 UltraCAR-T is a multigenic autologous CAR-T cell treatment utilizing Precigen’s Sleeping Beauty system to simultaneously express a CAR specifically targeting the unshed portion of MUC16, which is highly expressed on ovarian tumors with limited normal tissue expression; membrane bound IL-15 for enhanced in vivo expansion and persistence; and a kill switch to conditionally eliminate CAR-T cells for an improved safety profile. PRGN-3005 is being evaluated in collaboration with the University of Washington and Fred Hutchinson Cancer Research Center in an investigator-initiated open-label, dose escalation Phase 1 study to evaluate the safety and maximal tolerated dose of PRGN-3005 delivered by intraperitoneal infusion (IP) or intravenous infusion (IV) (clinical trial identifier: NCT03907527). The study population includes patients with advanced stage (III/IV) recurrent ovarian, fallopian tube, and primary peritoneal cancer who are platinum-resistant and have progressed after receiving standard-of-care therapies or are not eligible to receive available therapies with known clinical benefit.

About PRGN-3006 UltraCAR-T
PRGN-3006 UltraCAR-T is a multigenic autologous CAR-T cell treatment utilizing Precigen’s Sleeping Beauty system to simultaneously express a CAR specifically targeting CD33, which is over expressed on acute myeloid leukemia blasts with lesser expression on normal hematopoietic stem cell populations and minimal non-hematopoietic expression; membrane bound IL-15 for enhanced in vivo expansion and persistence; and a kill switch to conditionally eliminate CAR-T cells for improved safety profile. PRGN-3006 is being evaluated in collaboration with the Moffitt Cancer Center in a nonrandomized, investigator–initiated Phase 1/1b dose escalation study to evaluate the safety and maximal tolerated dose of PRGN–3006 UltraCAR-T (clinical trial identifier: NCT03927261). The study population includes patients with relapsed or refractory acute myeloid leukemia or higher risk myelodysplastic syndrome.

Trademarks
Precigen, UltraPorator, UltraCAR-T and Advancing Medicine with Precision are trademarks of Precigen and/or its affiliates. Other names may be trademarks of their respective owners

CRISPR Therapeutics to Participate in the Jefferies Virtual London Healthcare Conference

On November 16, 2020 CRISPR Therapeutics (Nasdaq: CRSP), a biopharmaceutical company focused on creating transformative gene-based medicines for serious diseases, reported that members of its senior management team are scheduled to participate virtually in the Jefferies London Healthcare Conference on Thursday, November 19, 2020, at 12:00 p.m. ET (Press release, CRISPR Therapeutics, NOV 16, 2020, View Source [SID1234571151]).

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A live webcast of the event will be available on the "Events & Presentations" page in the Investors section of the Company’s website at View Source A replay of the webcast will be archived on the Company’s website for 14 days following the presentation.

Merus to Present at the Jefferies Virtual London Healthcare Conference

On November 16, 2020 Merus N.V. (Nasdaq:MRUS), a clinical-stage oncology company developing innovative, full-length multispecific antibodies (Biclonics and Triclonics), reported that Bill Lundberg, M.D., President and Chief Executive Officer, will participate in a fireside chat at the Jefferies Virtual London Healthcare Conference on Tuesday, November 17, 2020 at 14:40 p.m. GMT/9:40 a.m. ET (Press release, Merus, NOV 16, 2020, View Source [SID1234571150]).

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A live webcast of the presentation will be available on the Investors page of the Company’s website, View Source An archived presentation will be available on the Merus website for a limited time.