Review Article Volume 2 Issue 4
Federal Research Center, Russia
Correspondence: Dontsov VI, Institute for Systems Analysis, Federal Research Center, Computer Science and Control of Russian Academy of Sciences, 117312 Russian, Moscow, 60-let Oktjabrja str. 9, Russia
Received: May 15, 2017 | Published: June 13, 2017
Citation: Dontsov VI. The intercellular mechanisms of regulation of cell growth and the role of the immune system: a new immune theory of aging. Adv Tissue Eng Regen Med Open Access. 2017;2(4):213–217. DOI: 10.15406/atroa.2017.02.00036
A theoretic modeling of the specific features of self-regulation of an organism’s cell growth has shown that specialized cell populations should exist to carry out intercellular regulation of the growth of various types somatic tissues. Based on the data of immunology and cell biology, it is suggested that such a system should be represented by specialized T-lymphoid cells. The age-related decrease in the function of such regulatory cells may be the main mechanism of aging of the organism’s self-renewing somatic tissues and may determine an age-related decrease in the growth potential of tissues of an aged organism.
Keywords: aging, theory of aging, immunity
The self-organization and self-renewal of tissues require a specialized cell system to regulate cell growth.
The problem of regulating cell division and cell growth is undoubtedly one of the most fundamental problems of both theory and practice of contemporary biology and medicine. Modern theories of aging suggest a close relationship of aging and the processes of growth and development, also consider the age-related decrease in cellular self-renewal of tissues due to their decreased growth potential to play the most important role during the development of the aging process.1–9
Highly organized multicellular organisms contain a huge number of dividing cells of various tissues and organs which grow and renew themselves at different rates. Thus, the very existence of multicellular organisms is associated with reliable systems of coordination and mutual concordance between the processes of cell division and tissue growth; however, at present our knowledge of them is insufficient. The regulation processes in complicated developing systems are now being considered using an adequate theoretical apparatus–theories of self-organization which are elaborated, for instance, in the context of synergetics and cybernetics.4,10–17
"Hypercycle" is one of the most important concepts in this field; it is defined as "a concept of intrinsic self-organization that determines the integration and coordinated evolution of a system of functionally related self-replicating units".18
The hypercycle theory is based on the evident inevitability of the generation during evolution of higher order regulatory relations between self-replicating units and systems of lower order (e.g., between cells or cell populations), which form a new unified super system of a higher level. Such interrelations in many cases can be modeled using simple and descriptive schemes, formulas, and diagrams. This modeling is of help in finding out the significant moments of the general and particular essence when specific physiological processes are studied. Let us consider some general concepts of this kind. Cell growth can be formally presented as the movement of cells from the rest phase (G) into the proliferation phase(S), and then, as a result of cell growth and cell division, the two new G cells appeared: G –S–2G.
Most generally, cell division can be modeled as an increase in the number of a certain type of cell (e.g., G) and without other influences, this results only in an infinite increase in the number of cells according to the following law: dG/dt=k G (i.e., change in the number of cells is proportional to their number at am moment in time).
Since under real conditions an infinite increase in cell growth would very rapidly cause death in a real multicellular organism, a process must exist the limit of the number of cells and is dependent on it, which is known as negative feedback: dG/dt=k1G/(k2G+const).
It is these speculations that gave rise to the concept of the chalone system of self-regulation, which works for one cell population. Cell population growth is limited, and the growing cells inhibit the entrance of the rest of the cells into the growth phase:
Further considerations can be reduced to similar processes of self-organization, but for several different cell populations. In this case, each cell population, which has its own chalone system, is considered to be a separate elementary system, and a self-organization process will take place between them according to the same laws (formulas); however, now “G” should designate a definite cell population of the organism (e.g., hepatocytes or skin cells, etc.– Ga).
In the formula for the growth of cell numbers, dG is now proportional to the number of cells in the population having a stimulating effect and is inversely proportional to the number of cells with an inhibiting effect. The particular appearance of the formulas can differ somewhat, but all of them have been shown by numerical analysis to give virtually the same results, which are presented in a general form. The minimum number of cell populations, which form a “cellular hypercycle” (we shall call this super system by this name) is equal to three: two populations stimulate each other (Ga and Gh) and one of them inhibits the growth of the others (Gi):
This cellular hypercycle is described by its features as follows: self-renewal, self-regulation, self-recovery (which is the same for the present consideration).
Subsequent trends in the evolution of this hypercycle are clear: first, an increase in the number cell populations; second, specialization:
In terms of immunology and theories of "regulatory nets," this can be presented as a positive selectiol specific clones, e.g., lymphocytes, during idiotoip-organ interactions. In its final form, the SRP should also take into account the appearance the evolution of the deep rest phase (Go) for the cells functional organs and tissues, because tissue function is of great importance for the organism as a whole; however, the appearance of such a phase only complicate the function of regulatory cells of the CRP-system. It should be emphasized that such a system as a whole is stable and possesses properties of self-formation, self-recovery, and conversion into the stable state under any disturbance – external influence.
T-lymphocytes as regulators of somatic cell growth
The main issue from the above is: what cells are crucial for the regulation of somatic cell growth in contemporary humans and mammals? Both theoretical concepts and experimental data clearly indicate that the main role in these processes belongs to T-lymphocytes-regulators (helpers and suppressors), namely, to their nearest precursors (presumably, nonspecific CRP) and to T-cells, which participate in the "syngenic mixed lymphocyte culture" (sMLC), and react to own cells of organism, unlike immune cells, which react to "alien (for the specific CRP).
In fact, based on the requirements, which are theoretical consequences of the above-mentioned scheme, it is evident that the suggested specific features of CRP coincide with the properties of regulatory lymphocyte populations (mainly T-lymphocytes). It must be:
On the other hand, there are data indicating that it is exactly lymphocytes that play a major part in the regulation of cell growth, not only of immune cells but of any type of cells in the organism. These works are so important that they were awarded an author's certificate of discovery in the USSR, and die most important work in this field has been done by Russian scientists. The importance of lymphocytes for regeneration processes has long been known, even before the formation of modern immunology,19,20 as a stimulating effect of immunotropic funds on regeneration processes.21
The greatest attention both here and abroad was paid to studies concerned with the lymphocyte transfer of "regeneration information": lymphocytes taken from animals with regenerating tissue of any type and transferred to intact syngenic animals were found to induce mytoses and cell growth of the appropriate type of tissue.22–25 The transfer of the hyperplastic reaction by lymphocytes is possible for any tissue and any process, e.g., isoproterenol-induced hypertrophy of the salivary gland of rodents, functional heart hyperplasia etc.3,23,26,27
The regulation of fibroblast proliferation by T-lymphocytes, including the release of fibroblast-specific lymphokines, is well known. It was shown also that signs of bone tissue growth – osteopetrosis, are corrected by transfer of lymphocytes from healthy animals; moreover, parathyroid hormone, which is specific for osteoclasts, produces the effect through T-lymphocytes, which have receptors to this hormone unlike the osteoclasts.28,29 General growth inhibition, e.g., dwarfism in mice, can be prevented by the transfer of lymphocytes from healthy animals; and T-lymphocytes have receptors to the growth hormone and their number increases in the period of the animals' growth.30
There is a known paradox of "nude" mice, which contradicts the theory of tumor supervision (tumor supervision was thought to be the main evolutionary factor in lymphoid system development): the incidence of spontaneous and induced tumors in thymus-free mice is decreased rather than increased. Moreover, the transfer of lymphocytes from normal mice restored the usual incidence of tumors in them. The decreased regeneration and tissue renewal (the dystrophy syndrome) in these animals cannot be explained only by decreased immunity and bacterial infection. T-lymphocytes appear in these mice with time. Thus, the role of the thymus is played by ordinary tissues, which also stimulate the proliferation and maturation of T-cells.31,32
Facts are known of cases where lymphocytes stimulate and inhibit tumor growth, and these effects are not reduced to the typical "killer" or other purely immune phenomena.33–35 A decrease in cell renewal (physiological regeneration) during aging is preceded by degeneration of the thymus, which is a source of T-lymphocytes; were proposed the immune theory of aging; symptoms of ageing can be transferred to syngeneic transfer of lymphocytes from old mice.36–39
The "graft-versus-host" reaction leading to the inactivation of the host's own lymphocytes are accompanied by typical "nonimmune" symptoms a decrease in the induced regeneration, tissue degeneration, etc. The system of T-cell-regulators is much more complex than the systems of T-and B-effectors of immunity, and moreover, T-cells of the immune system recognize a foreign antigen ("not its own") in а complex with "its own"–with antigens of the major histocompatibility complex.
The science of immunology presents thorough studies and detailed descriptions of the so-called "syngenic mixed lymphocyte culture" (sMLC), when T-cells, mainly of the T-helper and T-suppressor type, show a vigorous proliferation in response to the organism's own cells, including nonimmune ones. These are "surplus" cells in classical immunology and they can be removed by antisera without changes in the ordinary immune reactions.2,40–42 However, the context of sMLC, attention should be paid the data on the appearance or increase in the number of receptors on the nonimmune cells of various tissue including tumors during their preparation for cell division, because these receptors provoke the react of T-cells.
Therefore, we have suggested that the function о regulation of cell growth of "one's own" cells is phylogenetically more ancient and more important, then immunity itself. T- and B-effectors of immunity are phylogenetically younger. In this case, the immune system is part of more general and complex system of cell growth regulation – the SRP.
Proceeding from the data discussed above, cell general conclusions can be made.
A new immune-regulatory theory of aging
With regard to significance of the decreased cell growth potential of somatic tissues in the aging process of the multicellular organisms, a new immune theory of aging has been developed, which emphasizes the important role of age-related deficiency of the lymphocyte-dependent regulation of somatic tissue growth during aging. Age-related deficiency of lymphocyte-dependent regulation of somatic tissue growth is a crucial mechanism of aging in multicellular organisms.3,10
After the appearance of the immune theory of formulated aging by F. Bernett, functions of the immune system during aging were comprehensively studied and their definite relation to the aging process was shown:age-related progressive atrophy of the thymus and lymphoid tissue as a whole, a decrease in expected lifetime with a decrease in the number of circulating T-lymphocytes, the similarity of senile changes and the consequences of early thymectomy and other immunodeficiencies, immune disorders, and damaged expression of histocompatibility antigens in progeria, etc.
Age-related changes are found in all functions of the immune system, especially those of the immune T-system:
However, attempts to theoretical link two processes: age-related increased lymphoid dystrophy all decreased self-renewal of other tissues, which is the main mechanism of aging in self-renewing tissues have failed.
This age-related decrease in self-renewal of vary tissues is known to be accompanied by the development of a generalized G1/S block of proliferation: the cells prepared for proliferation is increased, but they are not stimulated for proliferation. However, the reason for this block is well known in immunology for lymphocyte-effectors of senile animals; produced by an imbalance in the functions of T-lymphocyte-regulators. This is manifested by a reduction of the total number of T-regulators and an increased fraction of T-inhibitors. These data, along with the known sharply decreased sMLC in senility, correlate with above-mentioned concepts of the CRP-system in organism. We have proposed a new lymphoid theory aging. Its main statements are as follows:
Thus, the function of T-lymphocytes is suggested decrease sharply during aging due to changes in the organism's regulatory systems. We have discovered a variety of experimental evidence and have shown that it is possible to reactivate and rapidly (in days and hours) regenerate the growth potential of somatic cells under the influence of the CRP.2,3,10,33,43,44 Thus, the proposed new immune theory is not only of theoretical interest but also makes it possible to use the whole potential of immunopharmacology to counteract one of the crucial mechanisms of aging: the age-related decrease in cell self-renewal in the multicellular organisms, including mammals and humans.
The existence of multicellular organisms requires the presence of reliable regulatory systems to coordinate and interrelate processes of cell division and tissue growth. The most important level of regulation is represented by the system of intercellular regulation of cell growth of various types of somatic tissues. The theoretical modeling of specific features of self-formation and self-regulation of such a system shows that specialized cell populations should exist to provide the intercellular regulation of somatic tissue growth. Based on the experimental data of immunology and cell biology, we suggest that the system includes specialized T-cells of stimulating and inhibiting populations which in the "syngeneic mixed lymphocyte culture" react to the organism's own growing cells. The age-related decrease in the function of such T-regulating cells may be a crucial mechanism of aging of the organism's self-renewing somatic tissues and may determine the age-related decrease in the growth potential of tissues of the senile organism.
None.
The author declares no conflict of interest.
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