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Biomedical subjects

Jacques Ninio

Publications and source records attributed to Jacques Ninio.

3 recordsLinked to original sources

How B cells and dendritic cells may cooperate in antigen purification.

The specificity of the immunological responses is achieved through the cooperation of three classes of cells: B and T lymphocytes, and dendritic cells (DCs). A critical, intensely studied interaction is that between DCs and T cells, during which the DC presents MHC-bound antigenic fragments to the T cell receptor (TCR). There has been recent excitement about the possibility of increasing the signal-to-noise ratio in the detection of cognate antigen-TCR couples, by the use of kinetic proofreading mechanisms. We examine here the signal-to-noise problem in a broader perspective, and in particular, address the question of possible "antigen purification" mechanisms, prior to their presentation to the T cells. Ways in which the DCs might concentrate, purify and preserve their load of captured antigens are considered: (i) If antigens can be transferred from one DC to another, in such a way that the richer a DC in antigen, the more it captures antigens from other DCs, the antigens may end up concentrated in a small subset of DCs, (ii) antigen purification may be achieved through recycling interactions between DCs and B cells. A DC would transmit to a B cell antigen mixtures, and the DC would recapture only the antigens which can bind to the B cell's antibodies and (iii) dendrites, when they are present, may play an essential role in recapturing the antigens that were used in interactions of DCs with T cells, B cells, or other DCs, thereby reducing antigen losses. More generally, we provide a personal interpretation of cell-to-cell antigen transfers, in terms of a strategy in which there is a progressive emergence, through multiple interactions, of subsets of cells of each type better and better prepared for the subsequent rounds of interactions.

Animals↗

Testing sequence effects in visual memory: clues for a structural model.

In order to probe the internal organization of visual temporary memory, systematic experiments were performed in which the subjects had to memorize a series of 2-5 images then pass recognition tests, either in all possible testing permutations, (in the case of 2-4 images) or in 20 selected permutations (in the case of 5 images). Over 300,000 tests were performed, generating more than 40,000 errors. The error-rates were found to follow simple rules. Both the 3 and the 4 images results are compatible with the presence of only four typical accuracy levels. On the other hand, the reaction time (RT) results revealed surprisingly rich patterns. The RT for recognizing image i at testing stage t > 1 depends upon which image (j) was tested just before. The ranking of the RTs for (j, i) couples evolves from one testing stage to the next. It is proposed that these RTs reflect, in part, the time needed to localize the trace in memory of a given image, starting from the position at which the previous test occurred. If this assumption is correct, the results of this study are providing a picture of the configurations formed by memorized items in the visual temporary store. A hypothetical minimal model, involving several rows of slots on a triangular mesh is proposed to account for the structures in both the error-rates and the RT results.

Humans↗