N.N. Petrov Research Institute of Oncology Chemotherapy and Innovative Technologies Department
Saint Petersburg, 197758, Russia
NCT Number: NCT04180774
This study was designed to assess the safety and efficacy of inactivated tumor cells genetically modified with the TAG-7 gene as immunotherapy for cancer. Patients with melanoma or kidney cancer were included since they have immune-dependent tumors. Treatment was done in the adjuvant setting after complete cytoreduction of locally advanced or metastatic disease or in the therapeutic setting in patients where complete cytoreduction was impossible.
Looking for future studies?
Notify Me18 year and older
All sexes
Interventional
Phase 1 / Phase 2
Saint Petersburg, 197758, Russia
During the last decade, novel approaches for cancer treatment have been developed. Antitumor vaccines are one of the most promising approaches in tumor immunotherapy. Tumor cells possess low immunogenicity properties due to a number of the not completely understood mechanisms of resistance. One of the ways to overcome it is immune genes transfection. Genes encoding granulocyte-macrophage colony-stimulating factor (GM-CSF), interleukin (IL)-2 and IL-12 have been used most commonly, both in preclinical studies and clinical trials. These cytokines are well known to participate in the systemic immune response. Several studies have shown that the professional antigen-presenting cells (APCs) of the host, rather than the vaccinating tumor cells themselves, are responsible for priming CD4+ and CD8+ T cells, both of which are required to generate systemic antitumor immunity. Recent findings indicate that the adaptive arm of immunity is governed by the innate immune mechanisms that control the co-stimulatory signaling of APCs. Recently, investigators identified a novel gene, tag7, also know as PGRP-S. The insect ortholog of the tag7/PGRP-S was shown to be involved in the innate immune response in Drosophila. In preclinical studies, tag7-modified mouse tumor cells induced a long-lasting T-cell dependent immune response in mice. The effectiveness of antitumor vaccination was demonstrated on different models of mouse tumors, particularly for melanoma cells (M3, B16, F10). Clinically important results of vaccine therapy were achieved in patients with melanoma and renal carcinoma in a number of studies. The results with this treatment are comparable to chemotherapy and immunotherapy. Investigators assume that one has to activate the innate component of immunity first, followed by the activation of the adaptive one, to make anticancer vaccines more effective. Thus, a phase I/II clinical trial has been performed to evaluate the feasibility and toxicity of treatment with autologous tumor cells modified with the tag7 gene, which has been shown to be involved in innate immunity mechanisms,
Healthy volunteers accepted: No
Only the study team can determine whether someone qualifies for participation.
Inclusion criteria
Exclusion criteria
Patients received GMV once in three weeks subcutaneously in three points in the paravertebral region. One dose consisted of 10 million transfected and inactivated tumor cells. No dose reduction was allowed.
Time frame: From the fist injection to 3 month after the last injection
CTC AE v.3 was used for safety assesment
Time frame: every 8 weeks until disease progression or therapy completion, then every 3 month for 2 years, every 6 month for the next 2 years and annually thereafter
To assess the objective response rate (OR) RECIST v1.1 and irRC were used at the final assesment
Time frame: Samples obtained before therapy start
Factor production by culture of patient's tumor cells, used for vaccine preparation
Time frame: Samples obtained before therapy start
Factor production by culture of patient's tumor cells, used for vaccine preparation
Time frame: Samples obtained before therapy start
Factor production by culture of patient's tumor cells, used for vaccine preparation
Time frame: Samples obtained before therapy start
Factor production by culture of patient's tumor cells, used for vaccine preparation
Time frame: 1-5 days before each therapy cycle during course of therapy (cycle 21 days) through therapy completion, an average of 6 cycles (18 weeks)
Absolute (10^9/L) of CD3+ cells in peripheral blood
Time frame: 1-5 days before each therapy cycle during course of therapy (cycle 21 days) through therapy completion, an average of 6 cycles (18 weeks)
Absolute (10^9/L) concentration of CD4+ cells in peripheral blood
Time frame: 1-5 days before each therapy cycle during course of therapy (cycle 21 days) through therapy completion, an average of 6 cycles (18 weeks)
Absolute (10^9/L) concentration of CD8+ cells in peripheral blood
Time frame: 1-5 days before each therapy cycle during course of therapy (cycle 21 days) through therapy completion, an average of 6 cycles (18 weeks)
Absolute (10^9/L) concentration of CD16+CD56+ cells in peripheral blood
Time frame: 1-5 days before each therapy cycle during course of therapy (cycle 21 days) through therapy completion, an average of 6 cycles (18 weeks)
Absolute (10^9/L) concentration of CD38+ cells in peripheral blood
Time frame: 1-5 days before each therapy cycle during course of therapy (cycle 21 days) through therapy completion, an average of 6 cycles (18 weeks)
Absolute (10^9/L) concentration of HLA-DR+ cells in peripheral blood
Time frame: 1-5 days before each therapy cycle during course of therapy (cycle 21 days) through therapy completion, an average of 6 cycles (18 weeks)
Absolute (10^9/L) concentration of CD71+ cells in peripheral blood
Time frame: 1-5 days before each therapy cycle during course of therapy (cycle 21 days) through therapy completion, an average of 6 cycles (18 weeks)
Absolute (10^9/L) concentration of CD71+ cells in peripheral blood
Time frame: 1-5 days before each therapy cycle during course of therapy (cycle 21 days) through therapy completion, an average of 6 cycles (18 weeks)
Absolute (10^9/L) concentration of CD25+ cells in peripheral blood
Time frame: 1-5 days before each therapy cycle during course of therapy (cycle 21 days) through therapy completion, an average of 6 cycles (18 weeks)
IgA (g/L) level in serum
Time frame: 1-5 days before each therapy cycle during course of therapy (cycle 21 days) through therapy completion, an average of 6 cycles (18 weeks)
IgG (g/L) level in serum
Time frame: 1-5 days before each therapy cycle during course of therapy (cycle 21 days) through therapy completion, an average of 6 cycles (18 weeks)
IgM (g/L) level in serum
Time frame: 1-5 days before each therapy cycle during course of therapy (cycle 21 days) through therapy completion, an average of 6 cycles (18 weeks)
Lymphocytes migration (U) without stimulation
Time frame: 1-5 days before each therapy cycle during course of therapy (cycle 21 days) through therapy completion, an average of 6 cycles (18 weeks)
Lymphocyte migration after in vitro stimulation with Kon A (% inhibition of migration)
Time frame: 1-5 days before each therapy cycle during course of therapy (cycle 21 days) through therapy completion, an average of 6 cycles (18 weeks)
Lymphocyte migration after in vitro stimulation with PGA (% inhibition of migration)
Time frame: 1-5 days before each therapy cycle during course of therapy (cycle 21 days) through therapy completion, an average of 6 cycles (18 weeks)
Ingestion rate (%)
Time frame: 1-5 days before each therapy cycle during course of therapy (cycle 21 days) through therapy completion, an average of 6 cycles (18 weeks)
Ingestion rate (%)
Time frame: 1-5 days before each therapy cycle during course of therapy (cycle 21 days) through therapy completion, an average of 6 cycles (18 weeks)
Immune complexes (U) in peripheral blood
N.N. Petrov National Medical Research Center of Oncology
Other
An Open-label Study of the Safety and Efficacy of Tag-7 Gene-modified Tumor Cell-based Vaccine in Patients With Locally Advanced or Metastatic Malignant Melanoma or Renal Cell Cancer
OpenTrials presents study information sourced from ClinicalTrials.gov. The official registry record should be consulted for the latest information.
View the official ClinicalTrials.gov record (opens in a new tab)This listing is for discovery and informational purposes only. It is not medical advice, does not guarantee that a study is recruiting, and does not determine eligibility. Contact the study team and a qualified healthcare professional when considering participation.
Published trials that share one or more normalized conditions with this study.
NCT05708950
Adnexal Diseases, Breast Cancer
Santa Monica, California, United States
View Trial DetailsNCT00600496
Breast Cancer, Breast Diseases
Detroit, Michigan, United States
View Trial DetailsNCT04146064
Carcinoma, Carcinoma, Transitional Cell
Toronto, Ontario, Canada
View Trial DetailsNCT04028479
Acute Lymphoblastic Leukemia, Acute Myeloid Leukemia
Idaho Falls, Idaho, United States
View Trial Details