Abstract Submission Opens: December 17, 2024

Next Round Registration Date: February 25th, 2025

Scientific Sessions

Scientific Sessions

Session 1Stem cells for neurological disorders

Stem cells have shown promise as a potential therapy for a range of neurological disorders, including Parkinson’s disease, Alzheimer’s disease, multiple sclerosis, and spinal cord injury. The idea behind using stem cells is that they have the potential to differentiate into various types of cells that can replace damaged or lost cells in the nervous system. In Parkinson’s disease, for example, researchers are exploring the use of dopamine-producing neurons derived from stem cells to replace the damaged cells that are responsible for the motor symptoms of the disease. In Alzheimer’s disease, stem cells are being investigated as a way to replace the lost neurons and improve cognitive function.

Similar Conferences: ISSCR Annual Meeting | World Stem Cell Summit | ESGCT Congress | TERMIS World Congress | Global Summit on Stem Cells | Conference on Tissue ScienceMeetings on Regenerative Medicine | International Stem Cell Congress

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Session 2Biomaterials for regenerative medicine

Biomaterials are materials that are designed to interact with biological systems and promote tissue regeneration. In the field of regenerative medicine, biomaterials are used to support and guide the growth of new tissues and organs in the body. Biomaterials can be made from a variety of natural and synthetic materials, including metals, ceramics, polymers, and composites. They can be engineered to have specific properties, such as biocompatibility, biodegradability, and mechanical strength, depending on the specific application. In regenerative medicine, biomaterials are often used in combination with stem cells to promote tissue regeneration. For example, biomaterials can be used as scaffolds to support the growth of new tissue, or as carriers for stem cells to improve their delivery and retention at the site of injury.

Similar Conferences: | Symposium on Stem Cell Research | Stem Cell Conference | Regenerative Medicine Meetings | Cell Therapy Conference | Tissue Engineering Summit 2024| Biomaterials Conference 2024 | Regenerative Biology Conference | Stem Cell Research Conference |  Meeting on Cell and Gene Therapy

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Session 3Gene editing in stem cells

Gene editing in stem cells is a promising approach that has the potential to transform the field of regenerative medicine. It involves using advanced gene editing technologies, such as CRISPR/Cas9, to modify the genetic material of stem cells in a precise and controlled manner. One of the main applications of gene editing in stem cells is to correct genetic mutations that cause inherited diseases, such as sickle cell anemia and cystic fibrosis. By editing the genetic material of stem cells, it is possible to correct the mutation and produce healthy cells that can be used for transplantation. Gene editing in stem cells is also being used to create new therapies for a variety of diseases. For example, researchers are exploring the use of gene-edited stem cells to produce insulin for the treatment of diabetes, or to produce neurons for the treatment of neurological disorders such as Parkinson’s disease.

Similar Conferences: Meeting on Cell and Gene Therapy | Translational Medicine Conference | Molecular Medicine Summits | Stem Cell Transplantation Meetings | Regenerative Health Conference | Tissue Repair Conference | Stem Cell Therapy Summit | Regenerative Medicine Symposium

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Session 4Regulatory issues in stem cell therapy

Regulatory issues in stem cell therapy refer to the various rules, guidelines, and regulations that govern the use of stem cells for medical purposes. These regulations are in place to ensure the safety and efficacy of stem cell therapies and to protect patients from potential harm. In many countries, stem cell therapies are considered to be a form of biological drug and are subject to the same regulations as other drugs. This means that clinical trials of stem cell therapies must be conducted according to established protocols, and the therapies must be approved by regulatory agencies before they can be marketed and sold to patients. In addition to the regulations governing clinical trials, there are also regulations that govern the sourcing, processing, and storage of stem cells. These regulations are designed to ensure the safety and quality of stem cells used in therapies.

Similar Conferences: |  Conference on Gene Editing and CRISPR Technologies | Meetings on Translational Stem Cell Research | Symposium on Stem Cell Research | Stem Cell Conference | Regenerative Medicine Meetings | Cell Therapy Conference

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Session 5Stem cells and cancer therapy

Stem cells have shown potential as a therapy for cancer, both as a tool for cancer research and as a treatment option for patients. Stem cells are being used to study the mechanisms of cancer development and to identify new targets for cancer therapies. In addition, stem cells are being investigated as a way to deliver cancer treatments directly to tumors. One approach involves using stem cells to deliver cancer-killing agents directly to the site of the tumor. This approach is being studied in a number of different types of cancer, including brain cancer, breast cancer, and pancreatic cancer. The idea behind this approach is that stem cells can be engineered to specifically target the cancer cells and deliver the cancer-killing agents directly to the tumor.

Similar Conferences: ISSCR Annual Meeting | World Stem Cell Summit | ESGCT Congress | TERMIS World Congress | Global Summit on Stem Cells | Conference on Tissue Science |Meetings on Regenerative Medicine | International Stem Cell Congress

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Session 6Organoids for drug discovery

Organoids are three-dimensional structures that are grown from stem cells and resemble miniature versions of organs in the body. Organoids have emerged as a powerful tool for drug discovery, as they can be used to study the effects of drugs on specific tissues and organs in a more realistic and controlled environment than traditional cell culture models. Organoids can be used to model a range of different diseases, including cancer, neurological disorders, and genetic disorders. By using organoids to model diseases, researchers can study the effects of different drugs on the disease and identify potential new drug targets.

Similar Conferences: Stem Cell Conference | Regenerative Medicine Meetings | Cell Therapy Conference | Tissue Engineering Summit 2024| Biomaterials Conference 2024 | Regenerative Biology Conference | Stem Cell Research Conference |  Meeting on Cell and Gene Therapy

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Session 7Cardiovascular therapy with stem cells

Stem cell therapy for cardiovascular disease involves using stem cells to repair damaged heart tissue and improve the function of the heart. Stem cells have the potential to regenerate damaged heart tissue and improve blood flow to the heart, making them a promising therapy for cardiovascular disease. One approach involves using stem cells to stimulate the growth of new blood vessels in the heart. This can improve blood flow to the heart and reduce the risk of heart attack and other cardiovascular complications. Stem cells can also be used to regenerate damaged heart tissue and improve the function of the heart.

Similar Conferences: Conference on Gene Editing and CRISPR Technologies | Meetings on Translational Stem Cell Research | Symposium on Stem Cell Research | Stem Cell Conference | Regenerative Medicine Meetings | Cell Therapy Conference

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Session 8Epigenetic regulation of stem cells

Epigenetic regulation of stem cells refers to the control of gene expression in stem cells through modifications to the structure of DNA and associated proteins. These modifications can affect how genes are expressed, and play a crucial role in determining the fate and function of stem cells. Epigenetic regulation is critical for maintaining the balance between self-renewal and differentiation in stem cells. Stem cells must be able to self-renew to maintain their population, but they must also be able to differentiate into specific cell types to carry out their functions in the body. Epigenetic modifications help to regulate this process by controlling the expression of genes that are involved in self-renewal and differentiation.

Similar Conferences: World Stem Cell Summit | ESGCT Congress | TERMIS World Congress | Global Summit on Stem Cells | Conference on Tissue Science |Meetings on Regenerative Medicine | International Stem Cell Congress | Summit on Bioengineering |Regenerative Medicine Forum | Stem Cells & Bioprocessing Summit

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Session 9Clinical applications of iPSCs

Induced pluripotent stem cells (iPSCs) are a type of stem cell that are derived from adult cells, such as skin or blood cells, that have been reprogrammed to a pluripotent state. iPSCs have many potential clinical applications, as they can be used to generate patient-specific tissues and organs for transplantation, model diseases for drug discovery, and test the safety and efficacy of new treatments. One of the most promising applications of iPSCs is in regenerative medicine, where they are being used to develop new therapies for a range of diseases and conditions, including heart disease, diabetes, and Parkinson’s disease. iPSCs can be differentiated into various cell types, including cardiomyocytes, pancreatic beta cells, and dopaminergic neurons, which can be used to replace damaged or dysfunctional cells in the body.

Similar Conferences: Conference on Gene Editing and CRISPR Technologies | Meetings on Translational Stem Cell Research | Symposium on Stem Cell Research | Stem Cell Conference | Regenerative Medicine Meetings | Cell Therapy Conference | Tissue Engineering Summit 2024| Biomaterials Conference 2024

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Session 10Bioengineering for stem cell enhancement

Bioengineering approaches are being used to enhance the properties and functions of stem cells, including their survival, differentiation, and integration into host tissues. These approaches aim to improve the efficiency and safety of stem cell therapies, and to overcome the challenges associated with the clinical translation of stem cell-based treatments. One approach involves using biomaterials to create three-dimensional scaffolds that can support the growth and differentiation of stem cells. These scaffolds can mimic the microenvironment of specific tissues and provide cues to guide stem cell behavior. By optimizing the design of these scaffolds, researchers can improve the survival, differentiation, and integration of transplanted stem cells.

Similar Conferences:| International Stem Cell Congress | Summit on Bioengineering |Regenerative Medicine Forum | Stem Cells & Bioprocessing Summit | Cell & Gene Exchange |Meetings on Bioengineering and Life Sciences |  Conference on Gene Editing and CRISPR Technologies | Meetings on Translational Stem Cell Research | Symposium on Stem Cell Research | Stem Cell Conference | Regenerative Medicine Meetings

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Session 11Ethical issues in stem cell research

Stem cell research is a field that raises a number of ethical issues, including concerns about the source of stem cells. One of the most controversial sources of stem cells is embryonic stem cells, which are derived from human embryos. This raises ethical concerns about the destruction of human embryos, which some people believe is morally wrong. In response to these concerns, researchers have developed alternative sources of stem cells, such as induced pluripotent stem cells, which are derived from adult cells that have been reprogrammed to a pluripotent state. However, even these alternative sources of stem cells raise ethical issues, such as concerns about the use of human tissue and the potential for genetic manipulation. In addition to concerns about the source of stem cells, there are also ethical issues related to the use of stem cells in research and therapy, including issues of consent, safety, and access to treatments. These ethical issues highlight the need for careful consideration and regulation of stem cell research, in order to ensure that it is conducted in an ethical and responsible manner.

Similar Conferences: | Meetings on Translational Stem Cell Research | Symposium on Stem Cell Research | Stem Cell Conference | Regenerative Medicine Meetings | Cell Therapy Conference | Tissue Engineering Summit 2024| Biomaterials Conference 2024 | Regenerative Biology Conference | Stem Cell Research Conference |  Meeting on Cell and Gene Therapy

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Session 12Stem cells for reproductive medicine

Stem cells have the potential to revolutionize the field of reproductive medicine by providing new strategies for treating infertility and other reproductive disorders. In particular, stem cells are being investigated for their ability to differentiate into functional gametes, such as sperm and eggs, which could be used to treat infertility in men and women. Stem cells are also being explored for their potential to regenerate damaged reproductive tissues, such as the ovaries and testes, which could help to restore fertility in individuals who have undergone cancer treatments or other medical procedures that affect reproductive function.

Similar Conferences: Meetings on Translational Stem Cell Research | Symposium on Stem Cell Research | Stem Cell Conference | Regenerative Medicine Meetings | Cell Therapy Conference | Tissue Engineering Summit 2024| Biomaterials Conference 2024

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Session 13Stem cells and aging

As we age, our bodies experience a decline in the number and function of stem cells, which play a critical role in tissue repair and regeneration. This decline in stem cell function is thought to contribute to many age-related diseases and conditions, including cardiovascular disease, neurodegeneration, and cancer. Researchers are exploring ways to harness the power of stem cells to combat the effects of aging and to improve the health and longevity of individuals. One approach involves using stem cells to regenerate damaged tissues and organs in aging individuals. For example, stem cells could be used to regenerate the heart tissue in individuals with cardiovascular disease, or to restore the function of the brain in individuals with neurodegenerative diseases. Another approach involves using stem cells to develop new treatments for age-related diseases and conditions, such as using stem cells to create new insulin-producing cells for individuals with diabetes.

Similar Conferences:|  Conference on Gene Editing and CRISPR Technologies | Meetings on Translational Stem Cell Research | Symposium on Stem Cell Research | Stem Cell Conference | Regenerative Medicine Meetings | Cell Therapy Conference | Tissue Engineering Summit 2024| Biomaterials Conference 2024

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Session 14Biomaterials for stem cell delivery

Biomaterials play a critical role in stem cell delivery, providing a platform for stem cells to be transplanted and integrated into host tissues. The design of biomaterials can influence stem cell behavior and improve the efficacy of stem cell therapies, by providing cues to guide stem cell differentiation and promoting their survival and integration. One approach involves using biomaterials to create three-dimensional scaffolds that can support the growth and differentiation of stem cells. These scaffolds can mimic the microenvironment of specific tissues and provide cues to guide stem cell behavior. By optimizing the design of these scaffolds, researchers can improve the survival, differentiation, and integration of transplanted stem cells.

Similar Conferences: Biomaterials Conference 2024 | Regenerative Biology Conference | Stem Cell Research Conference |  Meeting on Cell and Gene Therapy | Translational Medicine Conference | Molecular Medicine Summits | Stem Cell Transplantation Meetings | Regenerative Health Conference

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Session 15Tissue engineering and biomaterials

Tissue engineering and biomaterials are two fields that are closely related and have the potential to revolutionize medicine by creating new treatments for a range of diseases and conditions. Tissue engineering involves creating functional tissues and organs in the laboratory, using a combination of cells, scaffolds, and growth factors. Biomaterials are materials that are used to create these scaffolds, and they play a critical role in tissue engineering by providing a platform for cells to grow and differentiate into functional tissues.

Similar Conferences: ISSCR Annual Meeting | World Stem Cell Summit | ESGCT Congress | TERMIS World Congress | Global Summit on Stem Cells | Conference on Tissue Science |Meetings on Regenerative Medicine | International Stem Cell Congress | Summit on Bioengineering |Regenerative Medicine Forum | Stem Cells & Bioprocessing Summit | Cell & Gene Exchange |Meetings on Bioengineering and Life Sciences

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Session 16Gene editing in stem cells

Gene editing is a rapidly evolving field that has the potential to transform stem cell research and therapy. Gene editing technologies, such as CRISPR-Cas9, allow researchers to precisely modify the genetic material of stem cells, enabling them to correct disease-causing mutations, introduce new genes, or modulate gene expression. This opens up new possibilities for the development of personalized stem cell therapies for a range of genetic diseases and conditions.

Similar Conferences: ISSCR Annual Meeting | World Stem Cell Summit | ESGCT Congress | TERMIS World Congress | Global Summit on Stem Cells | Conference on Tissue Science |Meetings on Regenerative Medicine | International Stem Cell Congress | Summit on Bioengineering |Regenerative Medicine Forum | Stem Cells & Bioprocessing Summit

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Session 17Clinical trials and regulation

Clinical trials and regulation play a crucial role in the development and approval of new medical treatments, including stem cell therapies. Clinical trials are a necessary step in the process of bringing new treatments to patients, as they provide important data on the safety and efficacy of the treatment in humans. Regulatory bodies, such as the U.S. Food and Drug Administration (FDA), oversee the clinical trial process and determine whether a treatment is safe and effective enough to be approved for use in patients.

Similar Conferences: International Stem Cell Congress | Summit on Bioengineering |Regenerative Medicine Forum | Stem Cells & Bioprocessing Summit | Cell & Gene Exchange |Meetings on Bioengineering and Life Sciences |  Conference on Gene Editing and CRISPR Technologies | Meetings on Translational Stem Cell Research

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Session 18Epigenetic regulation of stem cells

Epigenetic regulation refers to the changes in gene expression that occur without altering the DNA sequence itself. Epigenetic modifications, such as DNA methylation and histone modification, can influence the behavior and function of stem cells, including their ability to differentiate into different cell types. Researchers are studying the role of epigenetic regulation in stem cells, as this knowledge could help to develop more effective stem cell therapies. For example, by manipulating the epigenetic state of stem cells, researchers may be able to promote their differentiation into specific cell types, or enhance their ability to integrate into host tissues. Epigenetic modifications may also play a role in the development of cancer stem cells, which are thought to be responsible for tumor growth and recurrence.

Similar Conferences: ESGCT Congress | TERMIS World Congress | Global Summit on Stem Cells | Conference on Tissue Science |Meetings on Regenerative Medicine | International Stem Cell Congress | Summit on Bioengineering |Regenerative Medicine Forum | Stem Cells & Bioprocessing Summit | Cell & Gene Exchange

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Session 19Induced pluripotent stem cells

Induced pluripotent stem cells (iPSCs) are a type of stem cell that are generated by reprogramming adult cells, such as skin cells, into a pluripotent state. Pluripotent stem cells have the ability to differentiate into any cell type in the body, making them a promising tool for regenerative medicine and disease modeling. The discovery of iPSCs has revolutionized the field of stem cell research, as they offer several advantages over other types of stem cells. Unlike embryonic stem cells, which are derived from human embryos, iPSCs can be generated from readily available adult tissues, making them easier to obtain and use in research. In addition, because iPSCs are generated from a patient’s own cells, they may be less likely to be rejected by the immune system if used for transplantation.

Similar Conferences: | Regenerative Medicine Meetings | Cell Therapy Conference | Tissue Engineering Summit 2024| Biomaterials Conference 2024 | Regenerative Biology Conference | Stem Cell Research Conference |  Meeting on Cell and Gene Therapy | Translational Medicine Conference | Molecular Medicine Summits | Stem Cell Transplantation Meetings

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Session 20Tissue engineering and biomaterials in regenerative medicine

Tissue engineering and biomaterials play a crucial role in the field of regenerative medicine, which aims to restore the function of damaged or diseased tissues and organs. Tissue engineering involves the use of cells, scaffolds, and growth factors to create functional tissue substitutes that can be used to replace or repair damaged tissues. Biomaterials are materials that are used to interact with biological systems, such as living cells and tissues.

Similar Conferences: International Stem Cell Congress | Summit on Bioengineering |Regenerative Medicine Forum | Stem Cells & Bioprocessing Summit | Cell & Gene Exchange |Meetings on Bioengineering and Life Sciences |  Conference on Gene Editing and CRISPR Technologies | Meetings on Translational Stem Cell Research

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Session 21Endothelial Cells

Endothelial cells are a type of cell that line the interior surface of blood vessels, including arteries, veins, and capillaries. These cells play a crucial role in the regulation of blood flow and vascular function. Endothelial cells are involved in the maintenance of blood vessel integrity, regulation of blood pressure, and prevention of blood clotting.

Similar Conferences: ISSCR Annual Meeting | World Stem Cell Summit | ESGCT Congress | TERMIS World Congress | Global Summit on Stem Cells | Conference on Tissue Science |Meetings on Regenerative Medicine | International Stem Cell Congress | Summit on Bioengineering |Regenerative Medicine Forum | Stem Cells & Bioprocessing Summit

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