PubMed HealthSearch

SEARCH · PubMed Health

Results for “Therapeutic modulation”

Explore indexed PubMed citations for clinical trials, systematic reviews and public health research. Read source abstracts and follow each citation to its original PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 19 recordsLinked to original sources

Therapeutic modulation of brain temperature: relevance to ischemic brain injury.

Hypothermia was first applied therapeutically as a local anesthetic and later was used to achieve organ protection during procedures necessitating circulatory interruption. Profound whole-body hypothermia, typically carried out in conjunction with extracorporeal bypass, has long been employed during cardiac and neurosurgical operative procedures. More recently, studies in small-animal experimental models of cerebral ischemia have provided persuasive evidence that even small decreases in brain temperature confer striking protection against ischemic neuronal injury. By contrast, small elevations of brain temperature during ischemia accelerate and extend pathologic changes in the brain and promote early disruption of the blood-brain barrier. Hypothermia retards the rate of high-energy phosphate depletion during ischemia and promotes postischemic metabolic recovery. More importantly, mild intraischemic hypothermia markedly attenuates the release of glutamate into the brain's extracellular space and significantly diminishes the release of dopamine. Similarly, the inhibition of calcium-calmodulin-dependent protein kinase II triggered by normothermic ischemia is prevented by hypothermia, as is the ischemia-induced translocation and inhibition of the key regulatory enzyme protein kinase C. Hypothermia also appears to facilitate the resynthesis of ubiquitin following ischemia. Studies of potential clinical importance have shown that moderate hypothermia is capable of attenuating ischemic damage even if instituted early in the postischemic period. In the setting of focal cerebral ischemia, moderate brain hypothermia reduces the infarct size (particularly in the setting of reversible middle cerebral artery occlusion); conversely, hyperthermia markedly increases the infarct volume. These studies underscore the importance of monitoring and regulating the brain temperature during experimental studies of cerebral ischemia to insure a consistent pathologic outcome and to avoid the false attribution of "pharmacoprotection" to drugs that reduce the body temperature. The measurement of brain temperature is now practicable in neurosurgical patients requiring invasive monitoring, and human studies have shown that cortical and cerebroventricular temperatures may exceed systemic temperatures. Mild to moderate decreases in brain temperature are neuroprotective in cerebral ischemia, while mild elevations of brain temperature are markedly deleterious in the setting of ischemia or injury. It is anticipated that controlled clinical trials of therapeutic brain temperature modulation will be undertaken over the next several years.

Body Temperature

Vascular smooth muscle cell proliferation and its therapeutic modulation in hypertension.

The increased growth potential of vascular smooth muscle cells (VSMCs) represents one of the crucial anomalies responsible for the development of essential hypertension, diabetic macroangiopathy, and atherosclerosis. The exaggerated response to growth factors of VSMC from spontaneously hypertensive rats (SHRs) persists in culture when compared with normotensive Wistar-Kyoto control rats, indicating an intrinsic defect in the hypertension-producing mechanism. This greater proliferation is characterized by two intermediate phenotypes: (1) accelerated entry into the S phase of the cell cycle, which results from hyperresponsiveness to epidermal growth factor and platelet-derived growth factor, and (2) abnormal contact inhibition. The enhanced expression of transforming growth factor beta 1 (TGF-beta 1) messenger ribonucleic acid in SHRs precedes this altered contact inhibition, and only VSMCs from SHRs respond to exogenously added TGF-beta 1 at a high cell density, which suggests that abnormal TGF-beta 1 autoregulation may be implicated in the second phenotype. Platelets contain major growth factors for VSMC. Platelet extracts from hypertensive and diabetic patients present augmented growth-promoting activity on VSMCs, which is most evident when both diseases occur simultaneously. Growth-promoting activity may be further influenced by antihypertensive therapy. This growth-promoting activity is increased by hydrochlorothiazide but not by indapamide, atenolol, or captopril in diabetic hypertensive and nondiabetic hypertensive patients. In conclusion, VSMCs in hypertension manifest an intrinsic growth defect that is modulated by extrinsic platelet growth factors and antihypertensive drugs.

Animals

Therapeutic modulation of growth-promoting activity in platelets from diabetics.

Proliferation of vascular smooth muscle is thought to be involved in the major diabetic complication atherosclerosis. We have previously reported an increase of growth-promoting activity (GA) in platelets from insulin-dependent diabetics. In this study, GA was measured in the platelet extract (PE) from eight diabetic patients who had been treated by conventional insulin therapy. Vascular smooth muscle cells from rat aorta were cultured and used as an assay system for GA. Incorporation of [3H]thymidine into DNA of cultured cells was stimulated by diabetic PE significantly more (P less than .05) than by normal PE. Diabetic PE incubated with cells for 4 days increased cell numbers significantly more (P less than .05) than normal PE. These abnormalities were corrected by long-term intensive insulin treatments (continuous subcutaneous insulin infusion and Pen infuser). The decrease of platelet extract GA appeared to correlate with the amount of insulin administered before meals as short-acting boluses, whereas the level of basal or long-acting insulin appeared to correlate with an increase of PE GA. Thus, the growth-promoting potential of platelets can be normalized by intensive insulin therapy. The relationship of insulin levels to this activity needs further evaluation.

Adult

[Regulation and therapeutic modulation of T-lymphocytes adhesion].

LFA-1, Mac-1, and p150,95 are leukocyte adhesion proteins called beta 2 integrins. LFA-1 is expressed at the surface of all leukocytes. A rare disease caused by mutations of the gene encoding the integrin beta 2 subunit is characterized by defective expression of these leukocyte adhesion molecules. Affected individuals have profound immune deficiency with severe bacterial infections for which the only effective treatment is bone marrow transplantation. These patients are unable to reject a transplant from only partially "Human Leucocyte Antigen" (HLA) compatible donors. In vivo studies have demonstrated decreased transplant rejection after injection of anti-LFA-1 antibodies to patients with other immune deficiencies. Simultaneous administration of an anti-CD2 antibody that blocks the second major pathway of lymphocyte adhesion can be expected to reduce even further the rate of rejection episodes.

Antibodies

Beta-adrenergic modulation of the polymorphonuclear leukocyte respiratory burst is dependent upon the mechanism of cell activation.

Although inhibition of polymorphonuclear leukocyte activation by beta-adrenoceptor agonists has been recognized for over a decade, effects have only been observed at high drug concentrations and in the presence of theophylline. In this study, catecholamine and prostaglandin modulation of the respiratory burst was evaluated with respect to the mechanism of polymorphonuclear leukocyte activation. Very low concentrations of isoproterenol and prostaglandin E2 inhibited the respiratory burst when induced by chemotactic peptide (N-formyl-methionyl-leucyl-phenylalanine) or calcium ionophore (A23187, ionomycin), but not when initiated by synthetic diacylglycerol. Because formyl-methionyl-leucyl-phenylalanine and ionophore mobilize calcium and arachidonic acid generation follows an increase in intracellular calcium, the arachidonic acid metabolite leukotriene B4 was studied. Isoproterenol at a very low (0.1 nM) concentration also rapidly inhibited leukotriene B4 generation. Since cyclic AMP was increased by isoproterenol regardless of the means of cell activation, modulation of intracellular calcium was evaluated with the fluorescent probe indo-1. A transient increase in calcium after formyl-methionyl-leucyl-phenylalanine or ionophore (but not oleoyl acetylglycerol) cell activation was inhibited by isoproterenol or prostaglandin E2. These results suggest that adrenergic agonists specifically modulate calcium-dependent polymorphonuclear leukocyte function. Because marked inhibition was observed at very low drug concentrations, cyclic AMP-dependent effects may be important in both homeostatic and therapeutic modulation of inflammatory response.

Adult

Enhanced natural killer cell activity and long survival in acute non-lymphoblastic leukaemia. A case report.

Natural killer (NK) cell activity is capable of mediating an antileukaemic effect. Accordingly this phenomenon was studied during the course of the 13-year disease-free survival of a patient after treatment for acute non-lymphoblastic leukaemia in order to test the hypothesis that concurrent tuberculosis may have induced this cell population and thereby modulated clinical and haematological course of the disease. An unusually high spontaneous cytotoxicity was demonstrated, which may have played a role in the prolonged survival. This latter finding is consistent with the theoretical possibility that chronic inflammation may enhance the activity of this particular cell population and supports the concept that therapeutic modulation of NK activity remains an achievable goal in clinical medicine.

Adolescent

The role of growth-factor receptors (excluding IL-2 receptors) in the proliferation and differentiation of normal and leukemic hematopoietic cells.

Receptors (R) are considered as allosteric enzymes whose action on metabolic chains is modulated through binding to the ligand. They play an essential role in the transduction of the multiple signals (e.g. interleukins or CSF) which intervene in the regulation of hematopoiesis. Their ordered interactions are necessary to regulate the growth and differentiation of normal hematopoietic precursors. This paper summarizes recent data concerning the structure-action relationship of growth-factor receptors in the signal transduction and alterations of growth-factor receptors which may play an important role in leukemic transformation. Some therapeutic modulations of growth-factors cascades are also discussed.

Cell Differentiation

[Pharmacologic modification of ureteral activity].

The renal pelvis and the ureter represent a functional system with myogenic excitation generation and conduction. The activity of this system is modulated by the autonomic nervous system: alpha-adrenergic and cholinergic substances stimulate, beta-adrenergic drugs inhibit the pyeloureteral activity. Besides the sympathetic nervous system with adrenergic postganglionic excitation conduction and the parasympathetic nervous system with cholinergic transmission, non-adrenergic, non-cholinergic systems appear to exist. Vasoactive intestinal peptide (VIP), e.g., markably decreases the frequency and amplitude of the ureteral activity. Calcium antagonists (e.g. nifedipin) lead to a direct inhibition of the ureteral activity: the quick phasic contractions are selectively oppressed without any influence on the tonic activity of the pyeloureter. A direct therapeutic modulation of the ureteral activity, however, e.g. to treat a colic or to accelerate the spontaneous discharge of stones, seems to be only rarely possible: Glucagone shows a markable decrease of ureteral peristalsis in animal experiments. Antagonists of prostaglandine proved to have not only an antiinflammatory and central analgetic effect but they also influence the pyeloureter directly by relaxing the muscular layer.

Acetylcholine

Differences in adenylate cyclase activities in murine normal cells and bladder tumor cells in tissue culture.

Cyclic AMP may be involved in the modulation of cell growth. The present work sought to further define differences between normal cells and tumor cells in their cyclic AMP system. Mouse embryo fibroblasts and murine bladder transitional epithelium tumor cells were grown in vitro; at various times, adenyl cyclase activity was assayed by measuring the conversion of [alpha32P]ATP to cyclic AM32P; stimulation by prostaglandin E1 or sodium fluoride was also determined. Base line and fluoride-stimulated enzyme activity were significantly greater in normal cells than tumor cells (P less than 0.01), and reached a peak at day 2; at confluency, levels in both systems decreased. Prostaglandin E1-stimulated levels, in contrast, were greater in tumor cells, there being a 10 fold greater relative stimulation in these cells compared to normal cells (P less than 0.01). Findings of a possibly greater sensitivity in these tumor cells may be important in a therapeutic modulation of tumor growth.

Adenylyl Cyclases

Protection against acute lethal viral infections with the native steroid dehydroepiandrosterone (DHEA).

A significant protective effect of a native adrenal steroid, dehydroepiandrosterone (DHEA), was demonstrated in studies of two lethal viral infection models in mice: systemic coxsackievirus B4 and herpes simplex type 2 encephalitis. The steroid was active either by long-term feeding or by a single subcutaneous injection. A closely related steroid, etiocholanolone, was not protective in these models. Histopathological analysis, leukocyte counts, and numbers of spleen antibody forming cells in the coxsackievirus B4 model suggests that DHEA functions by maintaining or potentiating the immune competence of mice otherwise depressed by viral infection. DHEA was not effective in genetically immunodeficient HRS/J hr/hr mice and did not demonstrate antiviral activity in vitro. While the molecular basis for DHEA's effect on the immune system is not known, studies by others suggest that it may counteract the stress related immunosuppressive effects of glucocorticoids stimulated by viral infection. Because DHEA is a native steroid that has been used clinically with minimal side effects, the utility of DHEA in the therapeutic modulation of acute and chronic viral infections including the acquired immune deficiency syndrome deserves intensive study.

Animals

Growth, ribonucleotide reductase and metals in murine leukemic lymphocytes.

Trace metals are essential for the growth and several other properties of human lymphocytes. We studied the effects of media with variable concentrations of three metals (Fe2+, Cu2+, Zn2+), a metal chelator (deferoxamine, DFX) and a cell-growth inhibitor (hydroxyurea) on the growth, intracellular metal concentration and activity of the enzyme ribonucleotide reductase in murine leukemic lymphocytes (L1210). Intracellular concentrations of Fe and Cu fluctuated within narrow limits in normal media, but decreased to very low concentrations in metal-poor media. The intracellular Zn concentration did not vary appreciably. Growth in intact cells decreased by 50%-70% when normal media were replaced by metal-poor media, but returned to control values when media were supplemented with gradually increasing concentrations of Fe and Cu. Fe and Cu had synergistic effects, while Zn had no stimulatory action. Hydroxyurea and DFX both inhibited cell growth, but only DFX inhibition was reversed by addition of metals. The addition of the above metals and inhibitors to the cell extracts produced effects on ribonucleotide reductase activity similar to those observed on the growth of whole cell preparations (stimulation by Fe and Cu, inhibition by Zn, DFX and hydroxyurea). These findings show that (a) the intracellular metal concentration is maintained in a narrow range during cell growth; (b) ribonucleotide reductase activity varies with cell growth; (c) ribonucleotide reductase activity and cell growth increase with Fe and Cu and decrease with Zn and DFX. Our data suggest that (a) Fe, Cu and Zn may have some effect on the growth and ribonucleotide reductase activity of L1210 cells, that (b) Fe, Cu and Zn may operate in a related and interdependent way and that (c) DFX inhibits cell growth probably through inhibition of the reductase activity and chelation of the Fe of its Fe-containing subunit. We conclude that any study on one of these metals should always include the other two and that manipulation of intracellular metals should be investigated as a potential therapeutic modulator of growth in leukemic lymphocytes.

Animals

The Maillard reaction in vivo.

The Maillard or browning reaction between reducing sugars and protein contributes to the chemical deterioration and loss of nutritional value of proteins during food processing and storage. This article presents and discusses evidence that the Maillard reaction is also involved in the chemical aging of long-lived proteins in human tissues. While the concentration of the Amadori adduct of glucose to lens protein and skin collagen is relatively constant with age, products of sequential glycation and oxidation of protein, termed glycoxidation products, accumulate in these long-lived proteins with advancing age and at an accelerated rate in diabetes. Among these products are the chemically modified amino acids, N epsilon-(carboxymethyl)lysine (CML), N epsilon-(carboxymethyl)hydroxylysine (CMhL), and the fluorescent crosslink, pentosidine. While these glycoxidation products are present at only trace levels in tissue proteins, there is strong evidence for the presence of other browning products which remain to be characterized. Mechanisms for detoxifying reactive intermediates in the Maillard reaction and catabolism of extensively browned proteins are also discussed, along with recent approaches for therapeutic modulation of advanced stages of the Maillard reaction.

Aging

1,25(OH)2-D3 is a potent regulator of interleukin-1 induced interleukin-8 expression and production.

Interleukin 8 (IL-8) is a potent leukocyte chemotactic and activating cytokine produced by keratinocytes, fibroblasts, peripheral blood monocytes (PBMC) and endothelial cells. IL-8 is believed to play an important role in the development of inflammation and is thus an obvious target for therapeutical modulation. We studied the possible effect of an endogenous immune modulator 1,25(OH)2-cholecalciferol (1,25(OH)2-D3) on the IL-1-induced IL-8-production by several types of cells. 1,25(OH)2-D3 inhibited the IL-1-alpha induced IL-8 production and mRNA expression in keratinocytes, fibroblasts and PBMC, but not in endothelial cells. Optimal vitamin concentrations varied between 10(-10) and 10(-11) M. These results suggest a potential role of this hormone in the regulation of chemotactic cytokine production.

Calcitriol

Attachment of peptide growth factors to implantable collagen.

Ingrowth of fibrovascular tissue from the woundbed into collagen-based dermal substitutes and survival of cultured epithelium after transplantation may be enhanced by attachment of heparin binding growth factor 2 (HBGF2) and epidermal growth factor (EGF) to collagen. Biotinylation of collagen and the growth factors allows immobilization of HBGF2 and EGF by high affinity binding of tetravalent avidin. Biotinylated HBGF2 and EGF (B-GF) were exposed to complexes of biotinylated collagen (B-COL)-avidin (A) and detected with peroxidase-labeled avidin (AP) followed by chromagen formation on nitrocellulose paper. Binding of biotinylated HBGF2 and EGF was specific (*, P less than 0.05), proportional to the concentration of biotinylated collagen, and resistant to ionic (NaCl) displacement. Data are expressed as mean percentages of maximum binding +/- SEMs: (table; see text) Growth response of cultured human epidermal keratinocytes to HBGF2 (population doubling time, PDT = 0.70 population doublings (PD)/day) confirmed the retention of mitogenic activity after biotinylation (PDT = 0.80 PD/day). Specific binding of biotinylated HBGF2, EGF, or other biologically active molecules (antibiotics, NSAIDs) to implantable collagen may provide a mechanism for positive therapeutic modulation of wound healing, including repair of full-thickness skin wounds with cultured cell-collagen composite grafts.

Cell Division

In vivo immune cell engineering from bench to clinical reality.

Adoptive immune cell therapies, exemplified by chimeric antigen receptor T cells, have transformed the treatment of hematological malignancies. However, their broader clinical application is limited by complex ex vivo manufacturing, high cost, and safety concerns. In vivo immune cell engineering has emerged as an alternative strategy that delivers genetic instructions directly to immune cells, thereby generating or modulating therapeutic immune cells within the body and reducing the reliance on individualized in vitro operations. These advances underscore the need for a systematic evaluation of this emerging field. Therefore, this review systematically summarizes the mechanistic principles and delivery strategies underlying in vivo immune cell engineering, with an emphasis on in vivo CAR-T cell generation and the engineering of other immune cells. We then discuss major viral and non-viral delivery platforms and clarify how these platforms influence cargo delivery, cell specificity, and functional immune-cell programming. We further discuss recent preclinical and emerging clinical advances across cancer, autoimmune diseases, and degenerative diseases, while examining key translational challenges, including delivery specificity, off-target effects, controllability, persistence, and manufacturing standardization. Overall, although the field of in vivo immune cell engineering is advancing rapidly, its clinical success will depend on coordinated improvements in delivery precision, therapeutic efficacy, safety, and controllable immune-cell programming.

Cancer immunotherapy