Beta Fulltext view is in preview — article structure may vary. Browse all articles
Contents
Journal of Embryology & Stem Cell Research Research Article 13 min read

Major Technology and Business Trends Empowering Stem Cell Reprogramming

Cauwenberghe CV*
* Corresponding author
ISSN: 2640-2637  10.23880/jes-16000129  Received: September 25, 2019  Published: October 17, 2019
  views
 11 references
 3 figures
PDF
Keywords
Regenerative Medicine Stem Cells Gene Editing Cell Reprogramming Cell Therapy Gene Therapy Three Dimensional Bioprinting Nanotechnology Induced Pluripotent Stem Cells Tissue Engineering
Abstract

The advent of stem cells reprogramming commenced with the discovery of the differentiation factors that allow the creation of human iPSCs (hiPSCs). Today, researchers all around the world are strongly committed to develop novel methods to design and build human stem cells in order to meet the increasing demand for more efficient production systems and manufacturing methods of stem cells for potential investigation into disease management. This trend is emphatically envisaged to accelerate the development of both regenerative medicine and drug discovery and development.

Roadmap Tapping into Technology Synergy

Stem cell reprogramming concerns the conversion of a somatic cell to an induced pluripotent stem cell (iPSC) in a previous stage to its differentiation into one of many diverse cell types. During the past five years, reprogramming optimization has gained increasing attention. Although one of the most promising technologies ever seen in medical biology, stem cells reprogramming methodology is still challenging. Indeed, most techniques use vectors to integrate DNA into the cell genome. As a consequence, potential issues may appear into scene, including insertional mutagenesis and residual expression of reprogramming factors in cellular progeny. Moreover, integrating vectors are not able to preserve the original genomic integrity of the somatic cell, hence making the therapeutic potential of iPSC limited. Recent attempts are focused on using non-integrating vectors, leveraging many different technology strategies [1].

Although, stem cells reprogramming encompasses radical restructuring of both the metabolism and the epigenome, iPSCs retain transcriptional, epigenetic, and metabolic memories from their originator somatic cells of origin. The correlation between the microenvironment and regulation of the epigenome constitute a critical aspect to take care during the process. Otherwise, reprogrammed cells may acquire aberrant characteristics distinct from either other pluripotent cells or parental cells revealing incomplete reprogramming. On that note, a key role is played by nutrient availability during the retention of somatic cell memory by iPSCs, hence reflecting satisfactory reprogramming efficiency, epigenetic regulation and cell fate [2]. An in-depth understanding of the current advances in reprogramming pluripotency will inspire scientists to devise more efficient methods that will lead to breakthrough clinical [3]. In fact, remarkable efforts have been made to identify the potential miRNA-mRNA interactions aiming for a better perception of their role in regulating the cellular transitions in different cell lines and their reprogrammed iPSCs through exhaustive genome-wide miRNA and mRNA expression analyses [4]. Similar endeavors are focused on achieving a more profound knowledge on the metabolic features of pluripotent stem cells and the mechanisms of the metabolic shift during reprogramming from somatic cells to iPSCs, in which the metabolism switches from oxidative phosphorylation to glycolysis [5].

Novel strategies are being developed in order to improve stem cells reprogramming by overcoming principal barriers, such as the reprogramming inhibition. The use of non-integrative delivery methods, overexpression of enhancing genes and the use of certain small molecules are some instances of enhanced stem cells reprogramming.

Therapeutic Companies are Looking for Ideally Suited Series of Products that Target Specific Market Needs

Stem cells reprogramming is highly tied to the remarkable growth of the induced pluripotent stem cells market segment, which is presenting the most promising growth trend. According to Frost & Sullivan’s market dynamics analysis for the period 2018-2023 [6], the global cell reprogramming market was valued in $5.67 billion in 2018 and it is expected to reach $9.05 billion in 2023, growing at a compound annual growth rate (CAGR) of 9.8%, as it is exhibited in the Figures 1 & 2.

Figure 1: Stem Cells, Overall Market Forecast, Global, 2019-2023.
Click to enlarge
Figure 1: Stem Cells, Overall Market Forecast, Global, 2019-2023.
Figure 2: Stem Cells, Market Forecast by Product, Global, 2019-2023.
Click to enlarge
Figure 2: Stem Cells, Market Forecast by Product, Global, 2019-2023.

Adult stem cells (ASCs), including neuronal stem cells (NSCs), hematopoietic stem cells (HSCs), mesenchymal stem cells (MSCs), and umbilical cord stem cells (UCSCs), are forecasted to continue growing at a CAGR of 9.4%. Human embryonic stem cells (hESCs) present the lowest growth trend with a CAGR of 8.7%, whereas iPSCs are expected to grow at a CAGR of 11.2%, showing the greatest growth trend in the stem cells market. This fact significantly encourages the advent of technologies in stem cells reprogramming.

Regarding applications, regenerative medicine advances in various therapeutic research areas, such as neurology, orthopedics, oncology, hematology, diabetes, liver disorder, kidney disease, cardiovascular and myocardial infraction, injuries, are predicted to grow at a CAGR of 9.7% during the forecasted period. Drug discovery and development applications present higher growth projection with a CAGR of 9.9%.

In terms of sources, considered most effective, but complex therapy, autologous sources are expected to grow at a CAGR of 9.6% during the forecast period. Allogeneic sources show the greatest growth trend, with a CAGR of 10.0%. Syngeneic sources are also promising, exhibiting a CAGR of 9.5%.

Most notable, expansion and sub-culture technologies, especially involving three-dimensional cell culture, are expected to grow at a higher CAGR, achieving 11.3% growth rate during the next five years, as it is depicted in the Figure 3.

Concerning product developers, therapeutic companies will exhibit a major growth trend during 2018- 2023 with a remarkable CAGR of 12.0%. Cell and tissue banks have gained considerable attention during the past five years, and are presently projected to grow at a CAGR of 9.0%. Similarly, tools and reagent companies are dramatically proactive in the market and are predicted to reach a CAGR of 9.9% for the period under study.

Comparably, service companies are constantly rebuilding themselves to offer the best suited stem cells based services to their customers, expecting to achieve a CAGR of 9.8% during the next five years.

Cell acquisition from bone marrow harvest, umbilical blood cord, and apheresis, is projected to reach a CAGR of 8.5%. Cell production via therapeutic cloning, in-vitro fertilization, cell culture, and isolation techniques, is expected to grow at a CAGR of 10.0% during the period under study. Cryopreservation technologies present an increasing growth rate of 10.6%.

Figure 3: Concerning product developers, therapeutic companies will exhibit a major growth trend during 2018- 2023 with a remarkable CAGR of 12.0%. Cell and tissue banks have gained considerable attention during the past five years, and are presently projected to grow at a CAGR of 9.0%. Similarly, tools and reagent companies are dramatically proactive in the market and are predicted to reach a CAGR of 9.9% for the period under study.
Click to enlarge
Figure 3: Concerning product developers, therapeutic companies will exhibit a major growth trend during 2018- 2023 with a remarkable CAGR of 12.0%. Cell and tissue banks have gained considerable attention during the past five years, and are presently projected to grow at a CAGR of 9.0%. Similarly, tools and reagent companies are dramatically proactive in the market and are predicted to reach a CAGR of 9.9% for the period under study.

According to Frost & Sullivan’s analysis, North America is still leading the market with 43% market share. The region is expected to grow at a CAGR of 9.3%. Representing 30.7% of market share, Europe is projected to achieve a CAGR of 9.5%, similar to North America. Although representing just 22.2% of market share today, the Asia Pacific region is expected to lead the growth rate with a CAGR of 11.6% during the next five years.

Key Success Factors Allowing Making Stem Cells Reprogramming A Reality for Novel Therapeutics Development

Forthcoming innovations accelerating the pace of cell reprogramming are based on collaborative environments that promote the development of innovative therapeutics by leveraging cutting-edge genome editing and stem cell technologies. Most important approaches are directed to shed light on the process and outcome of reprogramming and provide a framework applicable to diverse temporal processes in biology [7].

There is a remarkable emphasis on bioinformatics tools enabling the analysis of epigenetics-related datasets, such as those provided by DNA methylation and hydroxymethylation analysis, ChIP-seq and RNA-seq analysis, mathematical modeling techniques in epigenomics related to both health and disease status. Also of note, it is the commitment of companies and institutions to standardize and integrate processes for personalized stem cell-based drug prediction using reprogrammed stem cells. The rapid development of core imaging technology platforms that incorporate differentiation protocols to increase the success of generating viable, functional and mature cells from either patient material or existing iPSC lines, constitutes a proven example of that trend. Similarly, iPS master cell banks are setup under GMP conditions to guarantee the development of production platforms for the on-demand generation of specific stem cell therapeutics. Relevant advances have been performed by using iPSC-derived neurons to potentially build cellular models that help to determine the underlying molecular mechanisms of several neurodegenerative disorders, including Alzheimer’s disease [8].

In an attempt to distinguish the key success factors for exceling the cell reprogramming space, the following trends are highlighted [1].

Focus on marketable products for disease modeling. Novel in vitro human disease models can be created thanks to the ability to generate iPSCs from patient samples. This advancement would provide novel insights on early molecular events that regulate the pathogenesis of a broad spectrum of diseases.

Focus on making stem cells reprogramming affordable and on a massive scale. The mass production of clinical- grade iPSCs is still a critical issue. Projects, programs and initiatives, such as the iPSCs stock for regenerative medicine are predicted to make stem cell reprogramming therapies available to a larger population at affordable costs. Similarly, clinical validation will be accelerated through the higher availability of the best suited cells.

Focus on stem cells differentiation protocols. Quality control has been another hindrance in the clinical translation of reprogrammed cells. Life scientists use whole genome sequencing to evaluate each iPS cell line. However, this methodology becomes challenging when attempting to predict cancer risk based on sequence information. Therefore, in addition to best quality and highly safe iPSCs, the focus must be on improving differentiation protocols for both particular cell lineage and complex three-dimensional structures, including tissues and organs.

Focus on reprogramming efficiency. In order to make autologous therapies available for patients, both stem cells reprogramming methods and automated culture systems must become more efficient [9, 10, 11]. Clonal variations of iPSCs must be significantly minimized in order to provide higher quality cells for clinical therapies.

Discussion

Stem cell therapies are acclaimed as the next major advancements in transforming healthcare. Pharmaceutical companies are heavily investing in expanding their cellular therapy portfolio based on stem cells reprogramming, thereby exhibiting a strong evidence of understanding future of stem cells reprogramming in the treatment of a broad spectrum of life-threatening diseases.

Stem cells reprogramming is still bright as the medicine of the future. During the last decade, the development of stem cells therapeutics, based on stem cell differentiation protocols and direct cell reprogramming techniques, have led to over 4,500 stem cell trials registered on ClinicalTrials.gov.

Conclusion

The elucidation of the molecular mechanism of reprogramming is crucial to find novel strategies that help to improve the efficiency of reprogramming methods, and most importantly, overcome the safety concerns associated with iPSC generation.

Acknowledgement

I would like to thank all contributors from industry involved with the development and delivery of this article and Frost & Sullivan’s staff from the TechVision Group.

References

  1. Van Cauwenberghe C (2019) Technological Advances Enabling Stem Cells Reprogramming. Frost & Sullivan.
  2. Spyrou J, Gardner DK, Harvey AJ (2019) Metabolism Is a Key Regulator of Induced Pluripotent Stem Cell Reprogramming. Stem cells international pp: 10.
  3. Dayem AA, Lee SB, Kim K, Lim KM, Jeon TI, et al. (2019) Production of Mesenchymal Stem Cells through Stem Cell Reprogramming. International journal of molecular sciences 20(8): 1922.
  4. Kumar S, Espinosa EC, Leandro AC, Curran JE, Blangero J (2019) microRNA and mRNA interactions in induced pluripotent stem cell reprogramming of lymphoblastoid cell lines. Am J Stem Cells 8(2): 28-37.
  5. Nishimura K, Fukuda A, Hisatake K (2019) Mechanisms of the Metabolic Shift during Somatic Cell Reprogramming. Int J Mol Sci 20(9): 2254.
  6. Van Cauwenberghe C (2019) Technologies Transforming the Biomanufacturing Landscape. Integrating Technology Innovation and Business Development (TechVision). Frost & Sullivan Research Service D8BA-01.
  7. Schiebinger G, Shu J, Tabaka M, Cleary B, Subramanian V, et al. (2019) Optimal-transport analysis of single-cell gene expression identifies developmental trajectories in reprogramming. Cell 176(4): 928-943.
  8. Foveau B, Correia AS, Hebert SS, Rainone S, Potvin O, et al. (2019) Stem Cell-Derived Neurons as Cellular Models of Sporadic Alzheimer’s Disease. J Alzheimers Dis 67(3): 893-910.
  9. Van Cauwenberghe C (2016) Regenerative Medicine - The Future of Therapy (TechVision). Re-shaping Global Healthcare. Frost & Sullivan Research Service D6EC-01.
  10. Van Cauwenberghe C (2016) Regenerative Medicine: How Stem Cell Therapy Is Innovating Healthcare. Frost & Sullivan Market Insight.
  11. Van Cauwenberghe C (2015) Hematologic Stem Cell Transplantation Enhancement Aiming to Reduce Graft Versus Host Disease. Frost & Sullivan Drug Discovery Technology TechVision Opportunity Engine. D950-00-69.

Cite this article

BibTeX
APA
RIS
@article{cauwenberghe2019,
  title   = {Major Technology and Business Trends Empowering Stem Cell
Reprogramming},
  author  = {Cauwenberghe CV},
  journal = {Journal of Embryology & Stem Cell Research},
  year    = {2019},
  volume  = {3},
  number  = {2},
  doi     = {10.23880/jes-16000129}
}
Cauwenberghe CV (2019). Major Technology and Business Trends Empowering Stem Cell
Reprogramming. Journal of Embryology & Stem Cell Research, 3(2). https://doi.org/10.23880/jes-16000129
TY  - JOUR
TI  - Major Technology and Business Trends Empowering Stem Cell
Reprogramming
AU  - Cauwenberghe CV
JO  - Journal of Embryology & Stem Cell Research
PY  - 2019
VL  - 3
IS  - 2
DO  - 10.23880/jes-16000129
ER  -