Ciliates learn to diagnose and correct classical error syndromes in mating strategies

Preconjugal ciliates learn classical repetition error-correction codes to safeguard mating messages and replies from corruption by rivals and local ambient noise. Because individual cells behave as memory channels with Szilárd engine attributes, these coding schemes also might be used to li...

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Main Author: Kevin Bradley Clark
Format: Article
Language:English
Published: Frontiers Media S.A. 2013-08-01
Series:Frontiers in Microbiology
Subjects:
Online Access:http://journal.frontiersin.org/Journal/10.3389/fmicb.2013.00229/full
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spelling doaj-07b65b4be0da4ae1851ccd652cbe61e22020-11-24T22:12:37ZengFrontiers Media S.A.Frontiers in Microbiology1664-302X2013-08-01410.3389/fmicb.2013.0022957138Ciliates learn to diagnose and correct classical error syndromes in mating strategiesKevin Bradley Clark0Greater Los Angeles VA Healthcare SystemPreconjugal ciliates learn classical repetition error-correction codes to safeguard mating messages and replies from corruption by rivals and local ambient noise. Because individual cells behave as memory channels with Szilárd engine attributes, these coding schemes also might be used to limit, diagnose, and correct mating-signal errors due to noisy intracellular information processing. The present study, therefore, assessed whether heterotrich ciliates effect fault-tolerant signal planning and execution by modifying engine performance, and consequently entropy content of codes, during mock cell-cell communication. Socially meaningful serial vibrations emitted from an ambiguous artificial source initiated ciliate behavioral signaling performances known to advertise mating fitness with varying courtship strategies. Microbes, employing calcium-dependent Hebbian-like decision making, learned to diagnose then correct error syndromes by recursively matching Boltzmann entropies between signal planning and execution stages via power or refrigeration cycles. All eight serial contraction and reversal strategies incurred errors in entropy magnitude by the execution stage of processing. Absolute errors, however, subtended expected threshold values for single bit-flip errors in three-bit replies, indicating coding schemes protected information content throughout signal production. Ciliate preparedness for vibrations selectively and significantly affected the magnitude and valence of Szilárd engine performance during modal and nonmodal strategy corrective cycles. But entropy fidelity for all replies mainly improved across learning trials as refinements in engine efficiency. Fidelity neared maximum levels for only modal signals coded in resilient three-bit repetition error-correction sequences. Together, these findings demonstrate microbes can elevate survival/reproductive success by learning to implement classical fault-tolerant information processing in social contexts.http://journal.frontiersin.org/Journal/10.3389/fmicb.2013.00229/fullPheromonesevolutionary psychologyintracellular calciummate selectionSocial Decision Makingcourtship and dominance displays
collection DOAJ
language English
format Article
sources DOAJ
author Kevin Bradley Clark
spellingShingle Kevin Bradley Clark
Ciliates learn to diagnose and correct classical error syndromes in mating strategies
Frontiers in Microbiology
Pheromones
evolutionary psychology
intracellular calcium
mate selection
Social Decision Making
courtship and dominance displays
author_facet Kevin Bradley Clark
author_sort Kevin Bradley Clark
title Ciliates learn to diagnose and correct classical error syndromes in mating strategies
title_short Ciliates learn to diagnose and correct classical error syndromes in mating strategies
title_full Ciliates learn to diagnose and correct classical error syndromes in mating strategies
title_fullStr Ciliates learn to diagnose and correct classical error syndromes in mating strategies
title_full_unstemmed Ciliates learn to diagnose and correct classical error syndromes in mating strategies
title_sort ciliates learn to diagnose and correct classical error syndromes in mating strategies
publisher Frontiers Media S.A.
series Frontiers in Microbiology
issn 1664-302X
publishDate 2013-08-01
description Preconjugal ciliates learn classical repetition error-correction codes to safeguard mating messages and replies from corruption by rivals and local ambient noise. Because individual cells behave as memory channels with Szilárd engine attributes, these coding schemes also might be used to limit, diagnose, and correct mating-signal errors due to noisy intracellular information processing. The present study, therefore, assessed whether heterotrich ciliates effect fault-tolerant signal planning and execution by modifying engine performance, and consequently entropy content of codes, during mock cell-cell communication. Socially meaningful serial vibrations emitted from an ambiguous artificial source initiated ciliate behavioral signaling performances known to advertise mating fitness with varying courtship strategies. Microbes, employing calcium-dependent Hebbian-like decision making, learned to diagnose then correct error syndromes by recursively matching Boltzmann entropies between signal planning and execution stages via power or refrigeration cycles. All eight serial contraction and reversal strategies incurred errors in entropy magnitude by the execution stage of processing. Absolute errors, however, subtended expected threshold values for single bit-flip errors in three-bit replies, indicating coding schemes protected information content throughout signal production. Ciliate preparedness for vibrations selectively and significantly affected the magnitude and valence of Szilárd engine performance during modal and nonmodal strategy corrective cycles. But entropy fidelity for all replies mainly improved across learning trials as refinements in engine efficiency. Fidelity neared maximum levels for only modal signals coded in resilient three-bit repetition error-correction sequences. Together, these findings demonstrate microbes can elevate survival/reproductive success by learning to implement classical fault-tolerant information processing in social contexts.
topic Pheromones
evolutionary psychology
intracellular calcium
mate selection
Social Decision Making
courtship and dominance displays
url http://journal.frontiersin.org/Journal/10.3389/fmicb.2013.00229/full
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