Showing posts with label Plant behaviour. Show all posts
Showing posts with label Plant behaviour. Show all posts

Wednesday, 28 March 2012

Transcription factor PIF4 controls the thermosensory activation of flowering

A new understanding of how plants control their timing of reproduction in response to temperature. 


Flowering time is an important trait in crops as well as affecting the life cycles of pollinator species. A molecular understanding of how temperature affects flowering will be important for mitigating the effects of climate change.

Tuesday, 7 February 2012

Pflanzen als Vorbild für Roboter

http://www.heise.de/newsticker/meldung/Pflanzen-als-Vorbild-fuer-Roboter-1429208.html

On the German news, Plants as model samples for robots!!

How do wines coil around a support?


and how do seeds bury themselves into the ground?

Thursday, 2 February 2012

The Origin of Modern Biodiversity: Coevolution of Flowers and Insects

Browsing the web, I came across this blog "Teaching Biology", where a very comprehensive description of coevolution of flowers and pollinators is presented!

I am not going to copy-paste the content on this post, so see the page using the link!


http://bioteaching.wordpress.com/

Wednesday, 25 January 2012

Rapid evolution of seed dispersal in an urban environment

Rapid evolution of seed dispersal in an urban environment in the weed Crepis sancta

P.-O. Cheptou, O. Carrue, S. Rouifed, A. Cantarel

Abstract

Dispersal is a ubiquitous trait in living organisms. Evolutionary theory postulates that the loss or death of propagules during dispersal episodes (cost of dispersal) should select against dispersal. The cost of dispersal is expected to be a strong selective force in fragmented habitats. We analyzed patchy populations of the weed Crepis sancta occupying small patches on sidewalks, around trees planted within the city of Montpellier (South of France), to investigate the recent evolutionary consequences of the cost of dispersal. C. sancta produces both dispersing and nondispersing seeds. First, we showed that, in urban patches, dispersing seeds have a 55% lower chance of settling in their patch compared with nondispersing seeds and, thus, fall on a concrete matrix unsuitable for germination. Second, we showed that the proportion of nondispersing seeds in urban patches measured in a common environment is significantly higher than in surrounding, unfragmented populations. Third, by using a quantitative genetic model, we estimated that the pattern is consistent with short-term evolution that occurs over ≈5–12 generations of selection, which is generated by a high cost of dispersal in urban populations. This study shows that a high cost of dispersal after recent fragmentation causes rapid evolution toward lower dispersal. 

 Read the article on PNAS

Upcoming Conferences in the Field of Biomimetics, Plant Biology & Plant Behaviour


11 – 13 June 2012
A Coruña, Spain
Deadline:


SEB Annual Main Meeting 2012

29th June - 2nd of July

Salzburg, Austria


Living Machines 2012

9th-12th July 2012
Barcelona, Spain  

 

Plant Biology Congress Freiburg 2012

July 29 - August 3, 2012

Freiburg


 

7th Plant Biomechanics International Conference 

20-24 August 2012

Clermont-Ferrand, France


1st Symposium on Plant Signaling and Behavior
16-21 September 2012
Perth - Western Australia



 63rd International Astronautical Congress
October, 1-5 2012
Napoli, Italy


The 3rd International Symposium on Biomimetics "bionik-A"

October, 17th and 18th 2012

Villach - Austria

Friday, 20 January 2012

How plants manipulate the scatter-hoarding behaviour of seed-dispersing animals




From the abstract:
Some plants that are dispersed by scatter-hoarding animals appear to have evolved the ability to manipulate the behaviour of those animals to increase the likelihood that seeds and nuts will be stored and that a portion of those items will not be recovered.

Plants have achieved this in at least four ways:
1. By producing large, nutritious seeds and nuts that are attractive to animals and that stimulate hoarding behaviour.
2. By imposing handling costs that cause animals to hoard rather than to eat items immediately. These handling costs can take one of two forms: physical barriers (e.g. hard seed coats) that take time to remove and secondary chemicals (e.g. tannins) that impose metabolic costs.
3. By masting, where a population of plants synchronizes reproductive effort, producing large nut crops at intervals of several years. Mast crops not only satiate seed predators, but also increase the amount of seed dispersal because scatter-hoarding animals are not easily satiated during caching (causing animals to store more food than they can consume) but are satiated during cache recovery.
4. By producing seeds that do not emit strong odours so that buried seeds are less likely to be discovered.

These, and perhaps other, traits have increased the relative success of plant species with seeds dispersed by scatter-hoarding animals.

Read the full paper!

Thursday, 19 January 2012

Swarming Behavior in Plant Roots

Marzena Ciszak 1,2, Diego Comparini 2, Barbara Mazzolai 3, Frantisek Baluska 4, F. Tito Arecchi 1,5, Tamás Vicsek 6, and Stefano Mancuso 2 from
(1) CNR-Istituto Nazionale di Ottica, Florence, Italy; (2) LINV-Department of Plant Soil & Environmental Science, University of Florence, Florence, Italy; (3) Center for Micro-BioRobotics, Istituto Italiano di Tecnologia, Pontedera (PI), Italy; (4) Institute of Cellular and Molecular Botany, University of Bonn, Bonn, Germany; (5) Department of Physics, University of Florence, Florence, Italy; (6) Department of Biological Physics, Eötvös Loránd University, Budapest, Hungary.


Abstract
Interactions between individuals that are guided by simple rules can generate swarming behavior. Swarming behavior has been observed in many groups of organisms, including humans, and recent research has revealed that plants also demonstrate social behavior based on mutual interaction with other individuals. However, this behavior has not previously been analyzed in the context of swarming. Here, we show that roots can be influenced by their neighbors to induce a tendency to align the directions of their growth. In the apparently noisy patterns formed by growing roots, episodic alignments are observed as the roots grow close to each other. These events are incompatible with the statistics of purely random growth. We present experimental results and a theoretical model that describes the growth of maize roots in terms of swarming.


Wednesday, 2 November 2011

L'utopia tranquilla delle piante - The calm utopia of plants

sorry, in Italian only from the

Festival della Scienza di Genova

October 28, 2011

Stefano Mancuso

"Le piante hanno comportamenti sofisticati ed evoluti, una vita sociale meravigliosamente ricca e, in generale, una affascinante complessità che per millenni è rimasta sepolta sotto la loro apparente immobilità.
Mitezza contro violenza, fissità contro movimento, autotrofia contro eterotrofia, lentezza contro velocità: piante e animali sono il risultato di scelte evolutive opposte. Praticamente inermi, alla base della catena alimentare, eppure capaci di colonizzare la Terra fino a rappresentarne il 98% della biomassa, nella vita delle piante esiste un’idea utopistica e rivoluzionaria, che ne rende avvincente e imprevedibile il loro studio. Unici organismi viventi realmente "verdi" (in tutti i sensi), hanno evoluto strategie di comportamento così diverse da quelle degli animali da essere per noi una fonte inesauribile di originalissimi insegnamenti. Senza l’aggressività e prepotenza degli animali, senza la pressante necessità di uccidere per sopravvivere, le piante sono la realizzazione terrena del discorso della montagna: sono loro i miti che un giorno erediteranno la terra."

Watch the video here:
http://www.festivalscienzalive.it/site/home/conferenze/utopia-tranquilla-delle-piante.html

Thursday, 11 August 2011

Acacia plant controls ants with chemical

This is an old topic, but it is really amazing!

In Africa and in the tropics, armies of tiny creatures make the twisting stems of acacia plants their homes.
Aggressive, stinging ants feed on the sugary nectar the plant provides and live in nests protected by its thick bark.
This is the world of "ant guards".
The acacias might appear overrun by them, but the plants have the ants wrapped around their little stems.
These same plants that provide shelter and produce nourishing nectar to feed the insects also make chemicals that send them into a defensive frenzy, forcing them into retreat.



http://news.bbc.co.uk/2/hi/8383577.stm