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Immunoselection of a human melanoma resistant to specific lysis by autologous tumor-infiltrating lymphocytes. Possible mechanisms for immunotherapeutic failures.

Intratumoral heterogeneity has been proposed as a possible basis for immunotherapeutic failure when tumor-specific agents such as tumor infiltrating lymphocytes (TIL) are employed for cancer therapy. To examine this issue, highly specific oligoclonal MHC class I-restricted cytolytic TIL grown in bulk culture from patient 397 were used to immunoselect a TIL-resistant variant tumor from the autologous cultured melanoma line 397-mel. Four cycles of immunoselection produced tumor 397-R4, a variant completely resistant to 397 TIL but not to allogeneic LAK cell lysis in 4-h 51Cr release assays. By flow microfluorometry analysis, this tumor variant had not lost MHC molecules, adhesion molecules, or a variety of tumor-associated Ag expressed by the parent tumor but showed decreased expression of many Ag examined. Failure of 397-R4 to cold target inhibit TIL lysis of 397-mel suggested that cell-surface modification was at least one mechanism causing TIL resistance. The inherent lysability of 397-R4 was equal to 397-mel, as confirmed by lectin-dependent cellular cytotoxicity, lysis by non-MHC restricted allogeneic TIL, and lysis by a second line of 397 TIL grown independently from tumor 397. Treatment of 397-R4 with IFN-alpha or IFN-gamma, +/- TNF-alpha for 72 h before cytolytic assays enhanced TIL lysis of this target slightly, and enhanced surface expression of MHC class I and II molecules and the adhesion molecule ICAM-1. The resistant phenotype of 397-R4 was evident in all clones of 397-R4 examined and has been maintained in serial culture for over 13 mo and through passage in nude mice, suggesting that such stable tumor variants may provide an in vivo escape mechanism from specific immune reagents such as TIL. Evolving patterns of TIL culture clonality over time, as well as the spontaneous emergence of different clones in two long term TIL cultures grown under identical conditions from the same source of cryopreserved tumor, were documented by analyzing TCR gene rearrangements and suggest that TIL from different culture passages or lines may be used to overcome resistant tumor subpopulations.

Animals

Ultrastructural histochemical alteration of the plasma membrane in chronic myelocytic leukemia.

Ultrastructural histochemical evaluation of the surface of normal human blood and bone marrow cells exposed to the pyroantimonate-osmium (PAO) reaction indicated the selective binding of pyroantimonate to certain cations (calcium, magnesium, and possibly sodium) associated with the plasma membrane of neutrophilic leukocytes and their developmental forms. Other leukocytes and their precursors did not exhibit plasma membrane PAO reactivity. The extent of surface binding was related to cell maturity, with maximal labeling evident in the mid and late promyelocytes; decreased binding occurred with subsequent maturation while myeloblasts were nonreactive. This study was initiated to ascertain if histochemical surface modifications of neutrophilic cells occur in certain myeloproliferative disorders. In this regard, we have been able to demonstrate a distinctive defect in the plasma membrane PAO binding characteristics of the leukemic cells in chronic myelocytic leukemia (CML). Limited binding of pyroantimonate to the plasma membrane of the leukemic cell series in four patients with CML contrasted with that of the normal granulocytic cell series and the neutrophilic cells seen in myelomonocytic leukemia (two patients), myelofibrosis (one patient), and acute myelocytic leukemia (three patients). Comparison of surface PAO reactivity of neutrophilic cells in all stages of maturation in two patients with CML in blast crisis revealed that, in the patient with 30% circulating blast cells, PAO reactivity was identical to that noted in CML, while in the patient with 80% circulating blast forms, the PAO reactivity of the maturing neutrophilic cells more nearly resembled that observed in neutrophilic cells from normal individuals. Many neutrophilic cells from patients with myelofibrosis and myelomonocytic leukemia and from one patient in severe blast crisis had large surface deposits of pyroantimonate considered to reflect increased membrane-associated reactive cation.

Antimony

Neoendothelial healing of modified EPTFE grafts.

Expanded polytetrafluoroethylene (EPTFE) grafts have poor neoendothelial healing characteristics and low patency rates after long-term implantation. The authors have shown that this is due to the low porosity of currently used EPTFE grafts (20-30 microns fibril length). The inner surface coated grafts made of long antithrombogenic material fibrils (40-60 microns) are desirable, especially for small diameter grafts. The authors have implanted these surface modified grafts (coated grafts) and noncoated grafts into abdominal arteries of rats and observed good patency rates, and the effects of surface modification of the grafts on stable endothelial tissue growth. The authors used four different kinds of grafts (fibril length, 20, 40, 60, and 90 microns, respectively) to investigate the effect of porosity. High porosity (long fibril length) grafts induce good neoendothelial healing and collagen production.

Animals

Body distribution of 75Se-radiolabeled silica nanoparticles covalently coated with omega-functionalized surfactants after intravenous injection in rats.

Silica nanoparticles, radiolabeled with 75Selenium were coated with 14 types of omega-functionalized surfactants covalently bound to the particle surface. The particles were suspended in phosphate buffered saline (PBS) and injected intravenously via the tail vein of Wistar rats. The animals were sacrificed after 5 different time points (30 min, 2 h, 6 h, 24 h, and 7 d), and two samples of each organ and two blood samples were weighed into vials. The radioactivity of each sample was measured in a LKB-Wallac CliniGamma counter. Coated silica nanoparticles accumulated in the liver at much lower levels than other colloidal drug carriers after short time periods (30 min). The liver accumulation increased after longer time periods due to a natural redistribution process. Surface modification by increasing the hydrophilicity and thickness of coating yielded higher and longer persisting concentrations in the intestine, blood, and the muscles. Initially increased lung concentrations were decreasing with time, probably due to migration of the alveolar phagocytes.

Animals

Effects of chemical modifications on the surface- and protein-binding properties of the light chain of human high molecular weight kininogen.

The light chain of kallikrein-cleaved human high molecular weight kininogen is solely responsible for its cofactor activity in blood clotting. Sequencing of the NH2-terminal region of the light chain reported herein identified the third kallikrein cleavage site of high molecular weight kininogen as Arg-437. The co-factor activity of high molecular weight kininogen consists of the capacity to bind to negatively charged surfaces and to factor XI or prekallikrein. Chemical modification of the histidines by either photooxidation or ethoxyformic anhydride affected the equivalent of 14-16 of 23 histidines available and resulted in over 90% loss in procoagulant activity. The modified protein had drastically reduced surface- and zinc-binding capacity, but it bound successfully to either factor XI or prekallikrein. In contrast, modification of two carboxyl groups, which led to approximately 80-90% loss of procoagulant activity, seriously compromised protein binding but left surface binding unaffected. All 3 tryptophans were modified at pH 4.0 with N-bromosuccinimide with a 70% reduction in procoagulant activity, but only 1 tryptophan was available for reaction at pH 7.35, resulting in a 50% loss in activity. Tryptophan modification at acidic pH affected protein binding but did not modify surface or zinc binding. Modification of both available tyrosine and 9 of 18 available lysine residues did not have a significant effect on the procoagulant activity of the light chain. These studies indicate that histidines participate in surface binding and that free carboxyl groups and tryptophan side chains are involved in binding of high molecular weight kininogen to other clotting factors.

Amino Acid Sequence

A new method for promoting adhesion between precious metal alloys and dental adhesives.

A new, simple method of modifying the adherend metal surface by a liquid Ga-Sn alloy (Adlloy) was applied to dental precious and base-metal alloys for adhesion with 4-META adhesive resin. Adhesions of 4-META resin to three other surface states--as-polished, oxidized at high temperature, and electroplated tin--were also performed for comparison with the adhesion on Adlloy-modified surfaces. Bond strength measurements were made, and the durability against water at the adhering interface was evaluated. The Adlloy-modified gold alloys (Type IV and 14 K) and silver-based alloys (Ag-Pd and Ag-Cu) showed not only high bond strengths but also excellent water durability at the adhesion interface. Surface modification by Adlloy, however, did not affect adhesion to Ag-In-Zn and base-metal (SUS, Co-Cr, and Ni-Cr) alloys. Adhesion to the tin-electroplated specimens was comparable with that to the Adlloy-modified specimens.

Acrylic Resins

Surface-immobilized polyethylene oxide for bacterial repellence.

Polyethylene terephthalate films were surface-modified with polyethylene oxide (18,500 g/mol) using a solution technique described previously. These films were investigated for their resistance to bacterial adhesion. Three bacterial strains most commonly associated with implant infections, Staphylococcus epidermidis, Staphylococcus aureus and Pseudomonas aeruginosa, were cultured in tryptic soya broth, human plasma and human serum on the polymeric substrates. Significant reductions (between 70 and 95%) in adherent bacteria were observed on the polyethylene oxide-modified substrates compared to the untreated control polyethylene terephthalate. Surface modification with polyethylene oxide may reduce the risk of implant-associated infections. Plasma fibrinogen was observed to play an important role in the adhesion of all three of these species on both the polyethylene oxide-modified and control polyethylene terephthalate materials.

Bacterial Adhesion

Effects of Nd:YAG laser on the permeability of root canal wall dentin.

The effects of a thermally cooled pulsed Nd:YAG laser on the permeability and structural appearance of the root canal wall were investigated in vitro. Twenty specimens of freshly extracted human teeth were prepared by conventional methods. The teeth were randomly divided into two groups. Group 1 teeth were prepared conventionally but not lased. Group 2 specimens received three 15-s laser exposures totaling 45 s duration within the root canal via optical fiber delivery. Laser parameters were set at 5 W, 50 Hz, using a simultaneous air/water coolant spray of 10 psi air and 2 psi water. The external surfaces of the teeth were sealed with acrylic and placed in 2% methylene blue dye for 24 h. The teeth were then sectioned, photographed, and compared under light microscope for the extent of dye penetration. The specimens were subsequently prepared for scanning electron microscopy for correlation of permeability measurements with surface modifications. The combined use of scanning electron microscopy and dye permeability measurements revealed a sealing of the dentinal wall by deposition of glass-like material and, in one specimen, the bridging of a lateral canal that partially occluded the canal. Based on statistical comparisons, permeability of laser-treated teeth was significantly less than untreated specimens (alpha = 0.005).

Dental Pulp Cavity

Decreased bacterial adherence to silver-coated stent material: an in vitro study.

Bacteria are important in causing biliary stent blockage through adherence and subsequent biofilm formation. In our in vitro system, surface modification using test polyurethane discs with silver coating led to a reduction in the number of adherent bacteria compared with untreated controls by 10- to 100-fold in an apparently dose-related manner. The effect was more marked in the presence of bile. These results suggest that silver coating may have a potential benefit in preventing stent blockage.

Bacterial Adhesion

[Capsular sack implantation of heparin-modified posterior chamber lenses].

In a prospective study, heparin surface modified posterior chamber lenses were implanted into the capsular bag in 50 patients. The exact positioning of the biconvex, one-piece lens in the bag is the prerequisite for good centration and for an optimal result. The hydrophilisation of the originally hydrophobic PMMA material is achieved by heparin surface modification and results in less inflammation. The aim of this study was to investigate the postoperative behavior of the HSM posterior chamber lens implanted in the bag, with special consideration given to intraocular inflammation. In the postoperative follow-up time of one to seven months, hundred percent of the patients with physiological fundus reached a postoperative visual acuity of 0.7 or better.

Aged

Effect of surface composition on triolein hydrolysis in phospholipid vesicles and microemulsions by a purified acid lipase.

Sonicated dispersions of egg yolk phosphatidylcholine and triolein as vesicles and microemulsions have been used as substrates for the assay of a purified acid lipase. Previous studies have also shown that triolein localized in the surface phase of emulsions is the preferred substrate. In this study, we examined enzyme activity following several surface modifications using both vesicles and microemulsions. When the acidic phospholipids phosphatidylserine and phosphatidic acid were incorporated into both vesicles and microemulsions at up to 10 mol % of the total phospholipid, a dose-dependent reduction in the apparent Km was observed. Using the vesicles as substrate, a dose-dependent decrease in Vmax was also observed. Agarose gel electrophoresis was used to verify suspected changes in net particle charge. Analogous inclusion of phosphatidylethanolamine, sphingomyelin, or cholesterol did not affect kinetic parameters. Addition of oleic acid to sonication mixtures produced vesicles with a decreased apparent Km and Vmax, but triolein hydrolysis in microemulsions was not significantly altered. Triolein-containing vesicles prepared by using dimyristoyl- or dipalmitoylphosphatidylcholine were hydrolyzed maximally at the gel liquid-crystalline transition temperatures of the appropriate phospholipid. Differential scanning calorimetry was used to verify the temperatures of transition in these vesicles. The results indicate that acid lipase activity is influenced by the charge or physical state of the surface phase of model substrates and suggest that degradation of core components of naturally occurring substrates such as lipoprotein may be influenced by chemical changes on the surface of these particles.

Animals

The complement- but not mannose receptor-mediated phagocytosis is involved in the hepatic uptake of cetylmannoside-modified liposomes in situ.

In the elimination of injected liposomes in vivo, it is considered that several serum components play an important role on hepatic uptake of them. This study was conducted to clarify the hepatic uptake mechanism of cetylmannoside (Man)-modified multilamellar vesicles (Man-MLV) using perfused rat liver. In the presence of serum, Man-MLV was taken up by the liver depending on the serum concentration, and it showed an approximately two-fold higher accumulation than MLV without any surface modifications (PC-MLV). These hepatic uptakes of liposomes were obviously inhibited by preheating the serum at 56 degrees C for thirty minutes or by the treatment with anti-rat C3 antiserum. Further, SDS-PAGE followed by immunoblot analysis showed the deposition of iC3b on the opsonized Man-MLV. These results obtained in the present study suggested that hepatic uptake of Man-MLV was mainly mediated by complement receptor rather than mannose receptor on Kupffer cells in vivo.

Animals

Targeted Nanoparticle Delivery CRISPR/Cas9: overcoming biological barriers, enhancing stability, and improving therapeutic precision.

Clustered regularly interspaced short palindromic repeats (CRISPR)/CRISPR-associated protein 9 (Cas9) has emerged as a promising gene-editing platform for genetic disorders; however, its in vivo application remains limited by low delivery efficiency and biological barriers. Many CRISPR payloads fail to reach target sites due to extracellular degradation, immune clearance, and intracellular trafficking limitations. This review examines the interplay between biological barriers and nanoparticle engineering strategies for CRISPR/Cas9 delivery. A barrier-oriented engineering approach is proposed as a central framework, encompassing ligand-based surface modification for enhanced targeting and uptake, improved circulation stability via PEGylation and biomimetic coatings, and optimized payload release through endosomal escape strategies. Stimulus-responsive nanoparticle systems further enable spatiotemporal control over payload release. Nuclear targeting strategies, including optimization of nuclear localization signals (NLS) and exploitation of endogenous trafficking pathways, are highlighted as key factors for improving genome-level editing efficiency. Despite these advances, major challenges-including limited intracellular delivery efficiency, insufficient targeting precision, and safety concerns-continue to hinder clinical translation. Future directions highlight artificial intelligence-driven nanoparticle design, personalized delivery systems, and next-generation CRISPR platforms. Overall, an integrated, barrier-oriented engineering strategy is essential for advancing CRISPR/Cas9 delivery toward clinical applications, ultimately advancing global good health and well-being.

CRISPR/Cas9

In vitro evaluation of biocompatibility of surface-modified poly(methyl methacrylate) plate with rabbit lens epithelial cells.

Collagen type I was immobilized onto a poly(methyl methacrylate) (PMMA) plate by covalent bonding following surface modification by two methods. One method introduced amino groups by aminolysis with N-lithioethylenediamine (PMMA-NH2) and the other introduced carboxyl groups by graft copolymerization of acrylic acid (AAc) and acrylamide (AAm) (PMMA-COOH). Lens epithelial rabbit cells were cultured on the PMMA plate which was immobilized with collagen. Polygonal cells with a mosaic appearance were observed on the PMMA-COOH plate immobilized with collagen type I, whereas pleomorphic cells were present on the virgin PMMA and on the PMMA-NH2 plate immobilized with collagen type I. We concluded the PMMA-COOH plate immobilized with collagen type I provided a more comfortable atmosphere for lens epithelial cells, causing no metaplasia, than the other plates used in this cell culture model experiment.

Animals

Preparation and application of a photoreactive thrombin analogue: binding to human platelets.

alpha-Thrombin has previously been shown to bind to specific, saturable glycoproteins on the platelet surface. Modification of the thrombin active site with tosyllysyl chloromethyl ketone (TosLysCH2Cl) does not alter thrombin's binding characteristics. Interaction of alpha-thrombin with high-affinity binding sites (KD = 10(-9) M) initiates the platelet response which involves proteolytic hydrolysis of this glycoprotein. Although TosLysCH2Cl--thrombin binds to and competes for the same sites as alpha-thrombin, it cannot induce platelet stimulation because it is enzymatically inactive. In this study, we describe the preparation and application of photoreactive tritium-labeled thrombin analogues. The alpha-thrombin derivative retains its platelet-stimulating and enzymatic activities and, upon photoactivation, covalently binds to specific platelet membrane components. When freshly washed human platelets are exposed to less than saturation doses (less than or equal to 2 nM) of the thrombin derivatives in the dark and photoactivated, a single labeled complex is detected. The same experiment with greater than saturating doses (greater than or equal to 20 nM) of the thrombin derivative yields a similar complex as well as two additional ones. Molecular weight estimates of these thrombin-bound complexes were obtained by gel filtration and NaDodSO4--polyacrylamide gel electrophoresis. The low dose (high affinity) complex with TosLysCH2Cl--thrombin has an approximate molecular weight of 200 000, while that with active alpha-thrombin is smaller, approximately 120 000, due to enzymatic cleavage. The additional complexes detected with the high thrombin dose had estimated molecular weights of 400 000 and 46 000, respectively, and appeared to be the same for TosLysCH2Cl--thrombin and for the alpha-thrombin coupled platelets. These isolated complexes appear to correspond to the two previously detected populations of thrombin binding sites on the platelet.

Azides

Influence of surface and protein modification on immunoglobulin G adsorption observed by scanning force microscopy.

Scanning force microscopy has been used successfully to produce images of individual protein molecules. However, one of the problems with this approach has been the high mobility of the proteins caused by the interaction between the sample and the scanning tip. To stabilize the proteins we have modified the adsorption properties of immunoglobulin G on graphite and mica surfaces. We have used two approaches: first, we applied glow discharge treatment to the surface to increase the hydrophilicity, favoring adhesion of hydrophilic protein molecules; second, we used the arginine modifying reagent phenylglyoxal to increase the protein hydrophobicity and thus enhance its adherence to hydrophobic surfaces. We used scanning force microscopy to show that the glow discharge treatment favors a more homogeneous distribution and stronger adherence of the protein molecules to the graphite surface. Chemical modification of the immunoglobulin caused increased aggregation of the proteins on the surface but did not improve the adherence to graphite. On mica, clusters of modified immunoglobulins were also observed and their adsorption was reduced. These results underline the importance of the surface hydrophobicity and charge in controlling the distribution of proteins on the surface.

Adsorption

The ultrastructure of the thin limbs of Henle in Kidneys of the desert heteromyid (Perognathus penicillatus).

The thin limbs of both long- and short-looped nephrons in Perognathus kidneys were studied with transmission and scanning electron microscopy. The superficial nephrons have a short thin limb located in the vascular bundles of the outer medulla and are characterized by a simple, low-lying epithelium (0.4 +/- 0.1 mu thickness). In contrast, the first descending part of the thin limb of the majority of midcortical and juxtamedullary nephrons has a relatively thick epithelium (1.7 +/- 0.6 mu in thickness) with marked lateral and basal interdigitation and a dense surface covering of microvilli. The remaining part of the long descending thin limb is relatively simple with a low-lying epithelium (0.6 +/- 0.1 mu in thickness), decorated on its surface by sparse microplicae. The bend of the loop and the ascending limb are covered by a very simple low-lying epithelium (0.6 +/- 0.2 mu in thickness) with relatively little surface modification. The extreme urine-concentrating ability of Perognathus does not appear to be due to the development of a unique thin loop epithelium but rather to the extensive length of the inner and outer medulla.

Animals