Age, Biography and Wiki

Joseph Takahashi was born on 16 December, 1951 in Tokyo, Japan, is an American medical investigator (born 1951). Discover Joseph Takahashi's Biography, Age, Height, Physical Stats, Dating/Affairs, Family and career updates. Learn How rich is he in this year and how he spends money? Also learn how he earned most of networth at the age of 72 years old?

Popular As N/A
Occupation N/A
Age 72 years old
Zodiac Sign Sagittarius
Born 16 December, 1951
Birthday 16 December
Birthplace Tokyo, Japan
Nationality Japan

We recommend you to check the complete list of Famous People born on 16 December. He is a member of famous with the age 72 years old group.

Joseph Takahashi Height, Weight & Measurements

At 72 years old, Joseph Takahashi height not available right now. We will update Joseph Takahashi's Height, weight, Body Measurements, Eye Color, Hair Color, Shoe & Dress size soon as possible.

Physical Status
Height Not Available
Weight Not Available
Body Measurements Not Available
Eye Color Not Available
Hair Color Not Available

Dating & Relationship status

He is currently single. He is not dating anyone. We don't have much information about He's past relationship and any previous engaged. According to our Database, He has no children.

Family
Parents Not Available
Wife Not Available
Sibling Not Available
Children Not Available

Joseph Takahashi Net Worth

His net worth has been growing significantly in 2023-2024. So, how much is Joseph Takahashi worth at the age of 72 years old? Joseph Takahashi’s income source is mostly from being a successful . He is from Japan. We have estimated Joseph Takahashi's net worth, money, salary, income, and assets.

Net Worth in 2024 $1 Million - $5 Million
Salary in 2024 Under Review
Net Worth in 2023 Pending
Salary in 2023 Under Review
House Not Available
Cars Not Available
Source of Income

Joseph Takahashi Social Network

Instagram
Linkedin
Twitter
Facebook
Wikipedia
Imdb

Timeline

Joseph S. Takahashi is a Japanese American neurobiologist and geneticist.

Takahashi is a professor at University of Texas Southwestern Medical Center as well as an investigator at the Howard Hughes Medical Institute.

1970

Takahashi graduated from Richard Montgomery High School in Rockville, Maryland in 1970.

1974

Takahashi attended Swarthmore College and graduated with a degree in biology in 1974.

He worked with Patricia DeCoursey at the University of South Carolina for a year after graduation and then applied to work with Michael Menaker at the University of Texas, Austin.

1980

In the early 1980s, Takahashi and Menaker studied the bird pineal gland culture system in vitro to understand circadian oscillations, and they demonstrated that the suprachiasmatic nucleus (SCN) of the hypothalamus, which had been identified as the control center for circadian rhythms in mammals, played the same role in birds.

The authors also collaborated with DeCoursey and used hamsters to demonstrate that the photoreceptor system responsible for entrainment of circadian rhythms is different from that of the visual system.

1981

Menaker ultimately moved to the University of Oregon where Takahashi received his neuroscience Ph.D. in 1981.

1983

Takahashi was a postdoctoral fellow at the National Institute of Mental Health for two years under Martin Zatz before assuming a faculty position in Northwestern University's Department of Neurobiology and Physiology in 1983, where he held a 26-year tenure.

1988

Since its discovery in 1988, the tau gene had been studied thoroughly, however, due to limited genomic resources in hamsters, the organism in which it was discovered, a problem existed preventing further study.

Through the use of a genetically directed representational difference analysis (GDRDA), the fragments of DNA that differed between the mutant and wild type hamsters.

With this information, Takahashi then used positional syntenic cloning to identify synteny with the human genome.

This revealed that the gene is closely related to the gene doubletime (dbt) in Drosophila, and casein kinase 1 epsilon (CKIe) in humans, both of which interact with and regulate PER levels.

1993

In 1993, Takahashi and Michael Greenberg studied the mechanisms of mammalian suprachiasmatic nuclei entrainment to environmental light cycles.

They explored the relationship between phosphorylated cyclic adenosine monophosphate response element binding protein (CREB) and c-fos transcription, a protein previously indicated as a component of the photic entrainment pathway.

Using immunoprecipitation, Takahashi and Greenberg were able to show that light induced CREB phosphorylation occurs only during the subjective night.

Given that CREB has been shown to regulate c-fos transcription in PC12 pheochromocytoma cells, Takahashi and Greenberg were able to conclude that phosphorylation of CREB in the SCN may play an important role in mammalian photic entrainment.

After the in vitro research on the pineal gland culture system used to understand circadian oscillations, the limitations of the cell culture system were evident and Takahashi switched methods to begin using forward genetics and positional cloning—tools which required no advanced knowledge of the underlying mechanism—to understand the genetic and molecular bases of circadian rhythms.

1994

Takahashi's research group discovered the genetic basis for the mammalian circadian clock in 1994 and identified the Clock gene in 1997.

Using mutated mouse strains, Takahashi and his colleagues isolated strains with abnormal period length and discovered the clock gene in 1994.

Since identifying the clock mutant in 1994, Takahashi has continued his research on this mutation and has applied it to studying clinical disorders, such as irregular sleep homeostasis and obesity.

1997

They cloned the mammalian circadian clock gene in 1997.

2000

In 2000, Takahashi made what he calls one of his most significant contributions to the field, which was the cloning of the mutant tau gene identified in 1988 by Menaker and Martin Ralph.

In 2000, he and his colleagues at Northwestern recognized that clock mutant mice slept 1 to 2 hours less per night than wild type mice.

Additionally, because these mice lack the circadian system that regulates consolidated sleep at a certain time of day, sleep in clock mutants is spread out throughout the day in both light-dark cycles and in complete darkness.

This mutation results in less REM sleep and more time spent in earlier sleep phases.

2003

Takahashi was elected to the National Academy of Sciences in 2003.

2005

In 2005, he collaborated with Joseph Bass and reported the effects of mutations in the clock gene on the metabolism and physiology of mice.

Their experiments compared weight gain in Clock mutant mice to that of control mice and showed that mutant mice were more likely to gain weight.

Such a discovery influenced them to pursue exploration of the clock gene's role in appetite and energy.

In Clock mutant mice, they reported depressed levels of orexin, a neuropeptide involved in regulation of eating.

This result provides further evidence that the clock gene has a profound impact on metabolic processes in mice.

It has since been discovered that metabolism itself plays a role in regulating the clock.

2008

Takahashi joined the faculty at the University of Texas Southwestern Medical Center at Dallas in 2008 as their Loyd B. Sands Distinguished Chair in Neuroscience.

Takahashi also serves as a member of the Scientific Advisory Board of Hypnion Inc., a company focused on the development of novel therapeutics for central nervous system disorders affecting sleep and wake-alertness, as well as circadian rhythm abnormalities.

He also serves as a member of the editorial boards of Neuron, Physiological Genomics and Journal of Biological Rhythms.

2010

In 2010 Takahashi, Buhr, and Yoo examined the potential of temperature fluctuations to entrain biological oscillators.

The finding that the master circadian pacemaker, a robust oscillator which is typically only entrained by environmental light/dark cycles, was also capable of entraining to temperature fluctuations when isolated in vitro indicates that temperature resetting is a fundamental property of all mammalian clocks and likely works through a highly conserved mechanism in all mammalian cells.

This also suggests that body temperature rhythms, as controlled by the SCN in homeothermic mammals, is a potential mechanism through which the master clock may synchronize circadian oscillators within tissues throughout the body.

Takahashi's research has led to many developments in understanding how the circadian clock of mammals affects physiology and relationships with the environment.