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What makes the feather soar

Research reveals that the variety and adaptability of interlocking protein building blocks make up the feather's success. Birds have dozens of smaller variations within each type of brick, represented by the many differing copy numbers in their gene.

SourceUniversity of South Carolina·JournalBMC Evolutionary Biology·DateFeb 11, 2015

One good turn: Birds swap energy-sapping lead role

A new study by Oxford University scientists reveals that migrating birds 'share the pain' of leading a v-formation, allowing them to take turns saving energy. The research found that individual birds spend an average of 32% of their time benefiting from flying in the updraft produced by another bird's flapping wings.

SourceUniversity of Oxford·JournalProceedings of the National Academy of Sciences·DateFeb 2, 2015

Hummingbird's hover surprisingly easy to hack

University of British Columbia researchers found that hummingbirds lose positional stability when exposed to moving visual patterns, even with prolonged exposure or combination of moving and stationary stimuli. This discovery highlights the complex relationship between a hummingbird's visual field and its ability to hover in place.

SourceUniversity of British Columbia·JournalProceedings of the National Academy of Sciences·DateDec 8, 2014

Why lizards have bird breath

Scientists at the University of Utah have found that iguanas, not known for high-capacity aerobic fitness, have bird-like breathing patterns in their lungs. This discovery bolsters the case that unidirectional airflow evolved long before the first birds, suggesting a common ancestor among lizards, snakes, crocodiles, and dinosaurs.

SourceUniversity of Utah·JournalProceedings of the National Academy of Sciences·DateNov 17, 2014

How dinosaur arms turned into bird wings

Researchers have made a breakthrough in understanding how birds evolved from dinosaurs by studying fossil and developmental data, revealing the fusion of two bones to form a semilunate bone. The study clarifies the identity of wrist bones in both groups, shedding light on the evolutionary reversal of a lost bone.

SourcePLOS·JournalPLOS Biology·DateSep 30, 2014

Peacock's train is not such a drag

Researchers found no significant difference in take-off performance between peacocks with and without their iconic trains. Despite initial expectations, the elaborate plumage does not seem to be a costly sacrifice for male birds. However, it may still affect flight stability and running ability.

SourceUniversity of Leeds·JournalJournal of Experimental Biology·DateSep 17, 2014

Chinese scientists map reproductive system's evolution as dinosaurs gave rise to birds

Researchers have discovered a single-ovary reproductive system in the basal bird Jeholornis and derived enantiornithine birds from China, indicating that this adaptation occurred gradually during the evolution of dinosaurs and basal birds. This finding supports the hypothesis that birds lost one ovary due to energetic pressures of flight.

SourceScience China Press·JournalNational Science Review·DateMay 30, 2014

Birds display lateralization bias when selecting flight paths

A study published in PLOS Computational Biology found that birds exhibit individual lateralization biases when choosing flight paths, enabling flocks to split and avoid crowding. This allows them to navigate complex environments, such as dense bush and forests, with remarkable speed and accuracy.

SourcePLOS·JournalPLOS Computational Biology·DateMar 6, 2014

Waterbirds' hunt aided by specialized tail

Researchers found that waterbirds using different foraging strategies have evolved distinct tail shapes. Underwater foragers, such as cormorants and penguins, developed elongated tails with specialized vertebrae structures, while aerial birds had shorter, deflected tails.

SourcePLOS·JournalPLOS ONE·DateFeb 26, 2014

New insights into the origin of birds

Scientists discovered that key characteristics of flight, such as body size and forelimb length, evolved simultaneously in a group of dinosaurs. These findings suggest that birds arose through multiple evolutionary steps, with powered flight emerging later.

SourceUniversity of Bristol·JournalEvolution·DateFeb 23, 2014

Falcon feathers pop-up during dive

Researchers studied peregrine falcons' diving flight using high-speed cameras and wind tunnel models. They found that feathers may pop-up to prevent local flow separation, enabling the birds to reach high speeds while maintaining maneuverability.

SourcePLOS·JournalPLOS ONE·DateFeb 5, 2014

The mystery of lizard breath

A study by University of Utah researchers found that monitor lizards have a mostly one-way, looping air flow in their lungs, challenging previous notions about the function of this breathing pattern. The discovery raises questions about the evolutionary origins of this unique pattern, which may be as old as 270 million years.

SourceUniversity of Utah·JournalNature·DateDec 11, 2013

Bird brains predate birds themselves

A new study published in Nature reveals that at least a few non-avian dinosaurs had brains as large or larger than those of Archaeopteryx, indicating they may have had the neurological hardwiring necessary for flight. This challenges the idea that Archaeopteryx was uniquely transitional between feathered dinosaurs and modern birds.

What a bunch of dodos!

Research by the Zoological Society of London found that over 4,000 years ago, tropical Pacific Islands experienced a catastrophic mass extinction of birds, with around 1,300 species disappearing. The loss was largely due to overhunting and deforestation caused by human arrival.

SourceZoological Society of London·JournalProceedings of the National Academy of Sciences·DateMar 25, 2013

Disappearing homing pigeon mystery solved

Researchers discovered that homing pigeons rely on 'loft-specific infrasonic map cues' to navigate, which are disrupted when release sites are shielded from these low-frequency signals. This finding resolves a long-standing puzzle and sheds new light on the birds' impressive navigation abilities.

SourceThe Company of Biologists·JournalJournal of Experimental Biology·DateJan 30, 2013

Hummingbirds make flying backward look easy

Researchers discovered hummingbirds' reverse flight is cheaper than hovering and equally costly to forward flight, employing unique kinematic adjustments. The study found that the birds reduce wing beat frequency and inclination during backwards flight, making it 20% more efficient.

SourceThe Company of Biologists·JournalJournal of Experimental Biology·DateSep 27, 2012

Taking a bird's eye view could cut wildlife collisions with aircraft

A US Department of Agriculture study found that using lights on aircraft makes them more visible to birds, reducing the risk of collisions. Researchers tested Canada geese's response to radio-controlled model aircraft with different lighting conditions, finding that geese respond more quickly to aircraft with lights on.

SourceWiley·JournalJournal of Applied Ecology·DateJul 9, 2012

Timing is everything

Researchers found that modern birds are living dinosaurs with skulls similar to those of their juvenile ancestors. By analyzing fossil evidence and CT scans, they discovered that a change in developmental timing led to the evolution of birds, enabling them to retain physical characteristics of baby dinosaurs into adulthood.

SourceHarvard University·JournalNature·DateMay 27, 2012

Native forest birds in unprecedented trouble, according to University of Hawaii at Manoa researchers

Researchers from the University of Hawaii at Manoa report that native forest birds are experiencing prolonged molting periods due to increased competition with introduced Japanese white-eye birds. This change in molt timing and duration is associated with food scarcity and has significant implications for bird survival and growth.

SourceUniversity of Hawaii at Manoa·JournalPLOS ONE·DateJan 19, 2012

The rise and rise of the flying reptiles

A new study by Katy Prentice shows that pterosaurs evolved in a unique way, specializing over 160 million years. The research found that pterosaurs remained conservative for 70 million years before experimenting with new modes of life, adapting to feed on different food sources and becoming larger.

SourceUniversity of Bristol·JournalJournal of Systematic Palaeontology·DateJul 6, 2011

Auto-pilots need a birds-eye view

Scientists from Harvard University trained pigeons to fly through an artificial forest, gaining insights into their navigation methods that could inform auto-pilot technology design. The birds' ability to assess obstacles and choose straight routes could lead to more efficient and energy-saving navigation systems.